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	<title>ISTerre - Institut des Sciences de la Terre</title>
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		<title>Publications</title>
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		<dc:date>2022-01-06T21:35:18Z</dc:date>
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		<dc:creator>Olga DIMITRIEV, Valentina BATANOVA</dc:creator>



		<description>
&lt;p&gt;Liste des publications IMAP &lt;br class='autobr' /&gt;
Submitted / In revision &lt;br class='autobr' /&gt;
1. Chowdhury, R., Boudjehem, R., Such&#233;ras-Marx, B., Dupraz, M., Kulow, A., Cesar da Silva, J., Hazemann, J-L., Aubry, M-P., P&#233;rez, J., Fernandez-Martinez, A., Giraud, F.The 3D submicron-scale skeletal reconstruction of Nannoconus (Cretaceous calcareous nannofossil) - Insights on biomineralization. In revision, Biogeosciences &lt;br class='autobr' /&gt;
2. E. Janots, A.M. Seydoux-Guillaume, V. Batanova, V. Magnin, V. Bosse, B. Malvoisin. Reaction-Induced (&#8230;)&lt;/p&gt;


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&lt;a href="https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/" rel="directory"&gt;Plateforme MicroAnalytique ISTerre IMAP&lt;/a&gt;


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 <content:encoded>&lt;div class='rss_texte'&gt;&lt;h3 class=&#034;spip&#034;&gt;Liste des publications IMAP&lt;/h3&gt;
&lt;p&gt;&lt;strong&gt;Submitted / In revision&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Chowdhury, R., Boudjehem, R., Such&#233;ras-Marx, B., Dupraz, M., Kulow, A., Cesar da Silva, J., Hazemann, J-L., Aubry, M-P., P&#233;rez, J., Fernandez-Martinez, A., Giraud, F.The 3D submicron-scale skeletal reconstruction of Nannoconus (Cretaceous calcareous nannofossil) - Insights on biomineralization. In revision, Biogeosciences&lt;/p&gt;
&lt;p&gt;2. E. Janots, A.M. Seydoux-Guillaume, V. Batanova, V. Magnin, V. Bosse, B. Malvoisin. Reaction-Induced Cracking in Zircon : A Key to Deciphering Water's Geological Legacy. Submitted, Geology&lt;/p&gt;
&lt;p&gt;3. Vezinet, A., Brunet, F., Sobolev, A.V., and Molina-Ormazabal, D. Metamorphic garnet geochemistry suggests ultra-fast crystallization in deep subduction settings. In revision, Geolgy.&lt;/p&gt;
&lt;p&gt;4. Malvoisin, B., D&#246;rfler, P., Auzende, A.-L., Brunet, F., Cannat, M., Austrheim, H., and Kaczmarek, M.-A., Magnetite production in mesh texture during serpentinization, a marker of H2 diffusion. In revision, Journal of Petrology.&lt;/p&gt;
&lt;p&gt;&lt;strong&gt; &lt;strong&gt;2025&lt;/strong&gt; &lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. D. Bienveignant, S. Schwartz, Y. Rolland, M. Bernet, A. Vezinet, J. L&#233;ger, M. Bertauts, M. Huraut, C. Cordier, T. Dumont, V. Magnin, M. Balvay, A. Bilau, L. Boschetti, J. Nomade. In situ U-Pb dating of upper triassicmagmatic flows (Spilite) in the External Western Alps (Pelvoux massif) : A peripheral CAMP activity ? (2025) &lt;a href=&#034;https://doi.org/10.1016/j.jog.2025.102113&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Journal of Geodynamics, 165, 102113,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;2. L. Boschetti, C. Boullerne, Y. Rolland, S. Schwartz, G. Milesi, D. Bienveignant, E. Macret, D. Charpentier, P. M&#252;nch, J. Mercadier, A. Iemmolo, P. Lanari, M. Rossi, F. Mouthereau,&lt;br class='autobr' /&gt;
Shear zone memory revealed by in-situ Rb-Sr and 40Ar/39Ar dating of Pyrenean and Alpine tectonic phases in the external Alps, &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2025.108168&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, Volumes 514&#8211;515, 2025, 108168, ISSN 0024-4937,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;3. Charbel Kazzy, Alexander V. Sobolev, Adrien Vezinet, Valentina G. Batanova, Evgeny V. Asafov, Eero Hanski, Igor S. Puchtel, Andrey E. Izokh, Leonid V. Danyushevsky, V&#361; Ho&#224;ng Ly, Can Pham-Ngoc, Tran Tuan Anh.(2025) Strontium isotope and trace element compositions of olivine-hosted melt inclusions from the Song Da ultramafic volcanic suite, northern Vietnam : Implications for chemical heterogeneity in mantle plumes. &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2024.122564&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chem. Geol. 674, 122564,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;4.Gunia, M., Cordier, C., Janots, E., Vezinet, A., Milloud, V., Jacob, J.-B., Guillot, S. The Chamrousse ophiolite (Western Alps, France) is not a Cambro-Ordovician Ocean. (2025) &lt;a href=&#034;https://doi.org/10.1111/ter.12770&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Terra Nova, Volume 37, Issue 4,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;5. Legros Emma, Malvoisin Benjamin, Brunet Fabrice, El Yousfi Zaccaria, Batanova Valentina, Sobolev Alexander, Auzende Anne-Line. Massive Mg-rich fluid release across the brucite + serpentine reaction in subduction zones. (2025) &lt;a href=&#034;https://doi.org/10.1016/j.epsl.2025.119602&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Earth and Planetary Science Letters, 671, 119602,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;6. Lorenzo Cappelli, Paul A. Wallace, Evelyne Mbede, Shimba Kwelwa, Edista Abdallah, Gerald G.J. Ernst, Karen Fontijn. Pre-eruptive reservoir conditions of the peralkaline Rungwe Pumice Plinian Eruption (Tanzania) From Ha&#252;yne-Hosted Melt Inclusions. (2025) &lt;a href=&#034;https://doi.org/10.1093/petrology/egaf079&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Journal of Petrology. Volume 66, Issue 9, September 2025, egaf079,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;7. Mohsen Mobasheri, Nicholas Arndt, Carole Cordier, Alexander Sobolev, Habibollah Ghasemi, Claudio Marchesi, Mossaie Sabzehei, Carlos J. Garrido. Petrogenesis and Geochemistry of Upper Paleozoic Komatiites (Mashhad, NE Iran) (2025) &lt;a href=&#034;https://doi.org/10.1093/petrology/egae131&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. Petrology Volume 66, Issue 1, January 2025, egae131,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;8. Diego Molina-Ormazabal, Mathilde Radiguet, Jannes M&#252;nchmeyer, Nicolas Hernandez-Soto, Adrien Vezinet, Lea Pousse-Beltran, Catalina Castro, Marie&#8208;pierre Doin, Juan Carlos Baez, Marcos Moreno, Andres Tassara, Philippe Durand, Anne Socquet. Slip Modes Along a Structurally&#8208;Driven Earthquake Barrier in Chile. (2025) &lt;a href=&#034;https://doi.org/10.1029/2024JB030796&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Journal of Geophysical Research : Solid Earth, 130 (6),&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;9. Pitard, P., Replumaz, A., Leloup, P.-H., Chevalier, M.-L., Wang, S., Bai, M., X. Ou, Bernet, M., Balvay, M., Sobel, E.R., Vezinet, A., Gautheron, C., J. de Sigoyer, J., Li, H. No deformation propagation outward of the plateau across the Yalong Thrust Belt in Southeast Tibet. (2025) &lt;a href=&#034;https://doi.org/10.1016/j.tecto.2025.230855&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Tectonophysics, 913, 230855.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;10. Adrien Vezinet, Aleksandr V. Chugunov, Alexander V. Sobolev, Charitra Jain, Stephan V. Sobolev, Evgeny V. Asafov, Valentina G. Batanova, Nicholas T. Arndt, Leonid V. Danyushevsky, and John W. Valley. Growth of continental crust and lithosphere subduction in the Hadean revealed by geochemistry and geodynamics, &lt;a href=&#034;https://doi.org/10.1038/s41467-025-59024-6&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Nature Communications, 2025, 16 (1), pp.3850.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;11. Vezinet, A., Flores-Rojas, J.*, Sobolev, A.V., L&#233;ger, J., Chugunov, A.V.*, Batanova, V.G., Elburg, M.A., Hofmann, A., Balvay, M. and Paradis, N. Igneous apatite geochemistry indicates early cratonization of continents. 2025. &lt;a href=&#034;https://doi.org/10.1016/j.precamres.2025.107927&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Precambrian Research.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;12. B. Wild, J. Bas-Lorillot, D. Daval. Effect of pH temperature on olivine dissolution anisotropy. (2025). &lt;a href=&#034;https://doi.org/10.1016/j.gca.2025.08.004&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica et Cosmochimica Acta, 405, 55-65.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;13. Straub S., Batanova V., Sobolev A., Arturo G&#243;mez-Tuena, Ramon Espinasa-Perena, Ilya N Bindeman, Finlay M. Stuart, Elisabeth Widom, Yoshiyuki Iizuka. Olivines Fo-Ni-MnO systematics in the Trans-Mexican Volcanic Belt : evidence for cool and silicic primary arc magmas&#034; &lt;a href=&#034;https://doi.org/10.1093/petrology/egaf094&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. Petrology, egaf094,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;14. Selina Reigl, Elisabeth Wagner, Carlos Pimentel, Werner Kunz, Alexander E. S. Van Driessche, and Matthias Kellermeier ; Gypsum Gardens : Self-Assembled Tubular Structures of Calcium Sulfate with Relevance for the Detection of Extraterrestrial Life ; &lt;a href=&#034;https://doi.org/10.1002/anie.202508098&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Angew. Chem. Int. Ed. 2025, e202508098.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt; &lt;strong&gt;2024&lt;/strong&gt; &lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Bertauts, M., Vezinet, A., Janots, E., Rossi, M., Duhamel-Achin, I., Lach, Ph., &amp; Lanari, P. (2024) Cenozoic Pb-Zn-Ag mineralization in the Western Alps. &lt;a href=&#034;https://doi.org/10.1130/G51818.1&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;&lt;i&gt;Geology &lt;/i&gt; 52 (5).&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;2. Charbel Kazzy, Alexander V. Sobolev, Valentina G. Batanova, Evgeny V. Asafov, Eero Hanski, Igor S. Puchtel, Andrey E. Izokh, Ly Vu Hoang, Tran Tuan Anh. Study of melt inclusions from Song Da suite, northern Vietnam reveal high Ti component and high water content in the primary melt. &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2024.122219&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chem Geol. 662, 122219,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;3. Anfisa Skoblenko, Kirill Degtyarev, Alexey Travin, Valentina Batanova, Nadezhda Kanygina, Sergei Skuzovatov, Alexander Larionov.(2024) Two episodes of Early Palaeozoic high-pressure metamorphism in North Balkhash ophiolite zone (Central Kazakhstan, western Central Asian Orogenic Belt) : evidence for tectonic evolution of Junggar&#8211;Balkhash Ocean. &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2024.107672&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 482-483,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;4. Sergei Yu. Skuzovatov, Anfisa V. Skoblenko, Adrien Vezinet, Anas A. Karimov, Tatsuki Tsujimori. (2024). The impact of exhumation onto fluid-mobile element budget andRb-Sr isotope heterogeneity of the subducted eclogitic crust (Alag-Khadny, SW Mongolia). &lt;a href=&#034;https://doi.org/10.1007/s00410-024-02179-0&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Contribution to Mineralogy and Petrology, 179, 100,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;5.Chloe Seibert, Christian Beck, Nathalie Feuillet, Eva Moreno, Denise Pons, Chris Goldfinger, Gueorgui Ratzov, Guillaume St-Onge, Arthur Bieber, Pierre Morena, Jason Patton, Valentina Batanova, Rene Maury. (2024). Late Pleistocene charcoal-rich sediments in the Puerto Rico Trench, possible remnants of gigantic wildfires in North-Eastern South America. &lt;a href=&#034;https://doi.org/10.1016/j.palaeo.2024.112497&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Palaeogeography, Palaeoclimatology, Palaeoecoloyg, 655.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;6. Lara Maldanis, David Fernandez-Remolar, Laurence Lemelle, Manuel Guizar-Sicairos,, Mirko Holler, Francisco Mateus Cirilo da Silva, Val&#233;rie Magnin, Michel Mermoux, Alexandre Simionovici. (2024). Unveiling challenging microbial fossil biosignatures from Rio Tinto with micro-to-nanoscale chemical and ultrastructural imaging. &lt;a href=&#034;https://doi.org/10.1089/ast.2023.0127&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Astrobiology, 67, 721-733.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;7. Mobasheri, M., Arndt, N., Cordier, C., Sobolev, A., Ghasemi, H., Garrido, C.J. (2024) Upper Paleozoic komatiites near Mashhad, NE Iran. &lt;a href=&#034;https://doi-org.insu.bib.cnrs.fr/10.1130/G52289.1&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geology, 52, 759-763.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;8. Van Maldeghem F., Maeda R., Soens B., Suttle M. D., Kr&#228;mer Ruggiu L., Cordier C., Yamaguchi A., Schmitz B., Claeys P., Folco L., Goderis S. (2024) Chrome-rich spinels in micrometeorites from modern Antarctic sedimentary deposits. &lt;a href=&#034;https://doi.org/10.1016/j.epsl.2024.118837&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Earth and Planetary Science Letters, 641, 118837.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt; &lt;strong&gt;2023&lt;/strong&gt; &lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Batanova, V.G., Sobolev, A.V. (2023) Development of Reference Materials for Microanalysis in Geosciences : The Case of Olivine MongOL Sh11&#8211;2. &lt;a href=&#034;https://doi.org/10.1093/micmic/ozad067.101&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Microscopy and Microanalysis, 29 (Suppl1), 227.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;2. Gavrilenko, M., Batanova, V.G., Llovet, X., Krasheninnikov, S., Koshlyakova, A., Sobolev, A.V. (2023) Secondary fluorescence effect quantification of EPMA analyses of olivine grains embedded in basaltic glass. &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2023.121328&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chemical Geology, 621, 121328.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;3. Llovet, X., Gavrilenko, M., Batanova, V.G., Sobolev A.V. (2023) Element Depletion Due to Missing Boundary Fluorescence in Electron Probe Microanalysis : The Case of Ni in Olivine. &lt;a href=&#034;https://doi.org/10.1093/micmic/ozad100&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Microscopy and Microanalysis,19, 1595.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;4. Migdisova N. A., Sushchevskaya N. M., Portnyagin M. V., Shishkina T. A., Kuzmin D. V. &amp; Batanova V. G. (2023) Composition of Phenocrysts in Lamproites of Gaussberg Volcano, East Antarctica. &lt;a href=&#034;https://doi.org/10.1134/S0016702923090082&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochemistry International, 61, 911.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;5. Milyukova, A., Skoblenko, A., Dilek, Y., Wang, K.L., Batanova, V. &amp; Degtyarev, K.E. (2023). Geochemistry, mineral chemistry and Re&#8211;Os isotopes of refractory peridotites of the North Balkhash ophiolite zone in the West Central Asian Orogenic Belt (Central Kazakhstan) : multi&#8211;stage melt evolution of a Late Precambrian forearc mantle. &lt;a href=&#034;https://doi.org/10.1144/jgs2023-091&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. Geological Society, 180.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;6. Moya, A., Giraud, F., Molinier, V., Perrette, Y., Charlet, L., Van Driessche, A., Fernandez-Martinez, A. (2023). Exploring carbonate rock wettability across scales : role of (bio)minerals. &lt;a href=&#034;https://doi.org/10.1016/j.jcis.2023.03.197&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. Colloid and Interface Science, 642, 747-756.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;7. Skoblenko (Pilitsyna), A.V., Kanygina, N.A., Dubenskiy, A.S., Batanova, V.G., Dilek, Y., Sheshukov, V.S., &amp; Serov, P.A. (2023). High-pressure metamorphism of Precambrian continental crust in the southwestern part of the Central Asian Orogenic Belt (South Kazakhstan and North Tien Shan) and tectonic implications for the evolution of the Palaeo-Asian Ocean. &lt;a href=&#034;https://doi.org/10.1017/S0016756823000626&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geological Magazine, 160, 1624.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;8. Straub, S., Batanova, V., Sobolev, A., G&#243;mez-Tuena, A., Espinasa-Perena, R., Lindsey Fleming, W., Bindeman, I.N., Stuart, F. M., Widom, E. &amp; Iizuka, Y. (2023) The systematics of olivine CaO + Cr-spinel in high-Mg# arc volcanic rocks : evidence for in-situ mantle wedge depletion at the arc volcanic front. &lt;a href=&#034;https://doi.org/10.1093/petrology/egad085&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J.Petrology, 64, 12.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;9. Jacob J.B., Janots E., Cordier C., Guillot S. (2023) Discovery of Variscan orogenic peridotites in the Pelvoux Massif (Western Alps, France). &lt;a href=&#034;https://doi.org/10.1051/bsgf/2022021&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;BSGF &#8211; Earth Sciences Bulletin, 194, 2.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;10. Eslami A., Malvoisin B., Brunet F. Hydrothermal alteration of chromitite-dunite pairs from the Sabzevar ophiolite (NE Iran) : Chemical and nano-textural evolution of Cr-spinel (2023). &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2023.107093&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 442-443,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;11. William Carlin, Benjamin Malvoisin, Bruno Lanson, Fabrice Brunet, Nathaniel Findling, Martine Lanson, Val&#233;rie Magnin, Tiphaine Fargetton, Laurent Jeannin, Olivier Lhote ; FeIII-substituted brucite : hydrothermal synthesis from (Mg0.8,FeII 0.2)-brucite, crystal chemistry and relevance to the alteration of ultramafic rocks(2023). &lt;a href=&#034;https://doi.org/10.1016/j.clay.2023.106845&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Applied Clay Science, 234, 106845,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2022&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Arndt, N., Cordier, C., Boullier, A. M., Batanova, V., Magnin, V. &amp; Findling, N. (2022). Olivine in Kimberlites and Related Rocks - Macrocrysts, Dunitic Nodules and Megacrysts from the Same Metasomatized Source. &lt;a href=&#034;https://doi.org/10.1093/petrology/egac063&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Journal of Petrology 63, 20.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Jacob, J.- B., Janots, E., Guillot, S., Rubatto, D., Fr&#233;ville, K., Melleton, J., Faure, M. (2022) HT overprint of HP granulites in the Oisans&#8211;Pelvoux massif : implications for the dynamics of the Variscan collision in the external Western Alps. &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2022.106650&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;LITHOS, Volume 416, article id. 106650.&lt;/a&gt;&lt;br class='autobr' /&gt;
3. Koshlyakova, A., Sobolev, A.V., Krasheninnikov, S., Batanova, V.G. &amp; Borisov, A. (2022) Ni partitioning between olivine and highly alkaline melts : An experimental study. &lt;a href=&#034;https://www.sciencedirect.com/science/article/pii/S0009254121005581?via%3Dihub&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chemical Geology, 587, 120615&lt;/a&gt;. &lt;br class='autobr' /&gt;
4. Manceau, A., Simionovici, A., Findling, N., Glatzel, P., Detlefs, B., Wegorzewski, A.V., Mizell, K., Hein, J.R., Koschinsky, A. (2022). Crystal Chemistry of Thallium in Marine Ferromanganese Deposits. &lt;a href=&#034;https://doi.org/10.1021/acsearthspacechem.1c00447&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;ACS Earth Space Chem., 6, 1269.&lt;/a&gt;&lt;br class='autobr' /&gt;
5. Manceau, A., Paul, S.A.L., Simionovici, A., Magnin, V., Balvay, M., Findling, N., Rovezzi, M., Muller, S., Garbe-Sch&#246;nberg, D., Koschinsky, A. (2022). Fossil Bioapatites with Extremely High Concentrations of Rare Earth Elements and Yttrium from Deep-Sea Pelagic Sediments. &lt;a href=&#034;https://doi.org/10.1021/acsearthspacechem.2c00169&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;ACS Earth Space Chem., 6, 8.&lt;/a&gt;&lt;br class='autobr' /&gt;
6. Marrocchi, Y., Piralla, M., Regnault, M., Batanova, V., Villeneuve, J. &amp; Jacquet, E. (2022). Isotopic evidence for two chondrule generations in CR chondrites and their relationships to other carbonaceous chondrites. &lt;a href=&#034;https://doi.org/10.1016/j.epsl.2022.117683&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Earth and Planetary Science Letters 593, 9.&lt;/a&gt;&lt;br class='autobr' /&gt;
7. Narcisi, B. &amp; Petit, J.R. (2022) Englacial tephras of East Antarctica. In J. Smellie, K. Panter, A. Geyer (Eds.) Volcanism in Antarctica : 200 Million Years of Subduction, Rifting and Continental Break-Up. &lt;a href=&#034;https://doi.org/10.1144/M55-2018-86&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geological Society, London, Memoirs, Vol.55, 649.&lt;/a&gt;&lt;br class='autobr' /&gt;
8. Regnault, M., Marrocchi, Y., Piralla, M., Villeneuve, J., Batanova, V., Schnuriger, N. &amp; Jacquet, E. (2022). Oxygen isotope systematics of chondrules in Rumuruti chondrites : Formation conditions and genetic link with ordinary chondrites. &lt;a href=&#034;https://doi.org/10.1111/maps.13778&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Meteoritics &amp; Planetary Science 57, 122-135.&lt;/a&gt;&lt;br class='autobr' /&gt;
9. Schnuriger, N., Cartier, C., Villeneuve, J., Batanova, V., Regnault, M. &amp; Marrocchi, Y. (2022). Spinel in CV chondrules : Investigating precursor legacy and chondrule thermal histories. Meteoritics &amp; Planetary &lt;a href=&#034;https://onlinelibrary.wiley.com/doi/10.1111/maps.13802&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Science 57, 1018-1037.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2021&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Belousov, I., Batanova, V., Sobolev, A., Savelieva, G., Danyushevsky, L., Draayers, E. (2021). Pyroxenites from mantle section of Voykar Ophiolite - Melt/peridotite reaction and crystallization in SSZ mantle. &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2021.106063&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 388, 21.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Eslami, A., Malvoisin, B., Brunet, F., Kananian, A., Bach, W., Grieco, G., Cavallo, A., &lt;br class='autobr' /&gt;
Gatta, G.D. (2021). Podiform magnetite ore(s) in the Sabzevar ophiolite (NE Iran) : oceanic hydrothermal alteration of a chromite deposit. &lt;a href=&#034;https://doi.org/10.1007/s00410-021-01799-0&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Contributions to Mineralogy and Petrology, 176, 43.&lt;/a&gt;&lt;br class='autobr' /&gt;
3. Eslami, A., Malvoisin, B., Grieco, G., Aradi, L.E., Marchesi, C., Cavallo, A., Montanini, A., Borghini, G., Mathur, R., Ikehata, K., Davis, D.W., Li, Ch-H., Szab&#243;, C. (2021). Naive copper formation associated with serpentinization in the Cheshmeh-Bid ophiolite massif (Southern Iran). &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2020.105953&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos 382-383, 105953.&lt;/a&gt;&lt;br class='autobr' /&gt;
4. Jacob, J. B., Guillot, S., Rubatto, D., Janots, E., Melleton, J., Faure, M. (2021). Carboniferous high&#8208;P metamorphism and deformation in the Belledonne Massif (Western Alps). &lt;a href=&#034;https://doi.org/10.1111/jmg.12600&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Metamorphic Geology, 39, 8, 1009-1044.&lt;/a&gt;&lt;br class='autobr' /&gt;
5. Narcisi, B., Petit J.R. Englacial tephras of East Antarctica, (2021) in : Volcanism in&lt;br class='autobr' /&gt;
Antarctica : 200 Million Years of Subduction, Rifting and Continental Break-up. (eds) Smellie, J. L., Panter, K. S. and Geyer, A. &lt;a href=&#034;https://doi.org/10.1144/M55-2018-86&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geological Society, London, Memoirs, 55.&lt;/a&gt;&lt;br class='autobr' /&gt;
6. Piralla, M., Villeneuve, J., Batanova, V., Jacquet, E., Marrocchi, Y. (2021). Conditions of chondrule formation in ordinary chondrites. &lt;a href=&#034;https://doi.org/10.1016/j.gca.2021.08.007&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica et Cosmochimica Acta, 313, 295-312.&lt;/a&gt;&lt;br class='autobr' /&gt;
7. Regnault, M., Marrocchi, Y., Piralla, M., Villeneuve, J., Batanova, V., Schnuriger, N., Jacquet, E. (2021) Oxygen isotope systematics of chondrules in Rumuruti chondrites : Formation conditions and genetic link with ordinary chondrites. &lt;a href=&#034;https://doi.org/10.1111/maps.13778&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Meteoritics &amp; Planetary Science,1&#8211;14.&lt;/a&gt;&lt;br class='autobr' /&gt;
8. Somsikova, A. V., Kostitsyn, Y. A., Fedotova, A. A., Razumovskiy, A. A., Khain, E. V., Astrakhantsev, O. V., Batanova, V. G., Anosova, M. O. (2021). Late Neoprotherozoic Granitoid Magmatism of the Baikal-Muya Fold Belt, Ophiolite and Post-Ophiolite Plagiogranites. &lt;a href=&#034;https://doi.org/10.1134/S0016702921010109&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochemistry International, 59, 12-31.&lt;/a&gt;&lt;br class='autobr' /&gt;
9. Truche, L., Bourdelle, F., Salvi, S., Lefeuvre, N., Zug, A., Lloret, E. (2021) Hydrogen generation during hydrothermal alteration of peralkaline granite. &lt;a href=&#034;https://www.sciencedirect.com/science/article/abs/pii/S001670372100329X?via%3Dihub&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica et Cosmochimica Acta, 308, 42-59&lt;/a&gt;.&lt;br class='autobr' /&gt;
10. Sushchevskaya, N. M., Sobolev, A. V., Leitchenkov, G. L., Batanova, V. G., Belyatsky, B. V., Zhilkina, A. V. (2021). Role of Pyroxenite Mantle in the Formation of the Mesozoic Karoo Plume Melts : Evidence from the Western Queen Maud Land, East Antarctica. &lt;a href=&#034;https://pureportal.spbu.ru/en/publications/role-of-pyroxenite-mantle-in-the-formation-of-the-mesozoic-karoo-&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochemistry International, 59, 357-376.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2020&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Asafov, E.V., Sobolev, A.V., Batanova, V.G., Portnyagin, M.V. (2020). Chlorine in the Earth's Mantle as an Indicator of the Global Recycling of Oceanic Crust. &lt;a href=&#034;https://doi.org/10.15372/RGG2020161&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Russian Geology and Geophysics, 61, 937-950.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Airaghi, L., Bellahsen, N., Dubacq, B., Chew, D., Rosenberg, C., Janots, E., Waldner, M., Magnin, V. (2020) Pre-orogenic upper crustal softening by lower greenschist-facies metamorphic reactions in granites of the central Pyrenees. &lt;a href=&#034;https://doi.org/10.1111/jmg.12520&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Metamorphic Geology, 38, 183-204.&lt;/a&gt;&lt;br class='autobr' /&gt;
3. Barnes, C.J., Walczak, K., Janots, E., Schneider, D., Majka, J. (2020) Timing of Paleozoic Exhumation and Deformation of the High-Pressure Vestg&#1255;tabreen Complex at the Motalafjella Nunatak, Svalbard. &lt;a href=&#034;https://doi.org/10.3390/min10020125&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Minerals, 10, 125.&lt;/a&gt;&lt;br class='autobr' /&gt;
4. Hentschel, F., Janots, E., Trepmann, C.A., Magnin, V., Lanari, P. (2020) Corona formation around monazite and xenotime during greenschist-facies metamorphism and deformation. &lt;a href=&#034;https://doi.org/10.5194/ejm-32-521-2020&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Eur. J. Mineral. 32, 521&#8211;544.&lt;/a&gt; &lt;br class='autobr' /&gt;
5. Cordier, C., Coin, K., Arndt, T. N., Cartigny, P. (2020) The &#196;lgliden Ni-Cu-Au deposit : magmatic sulfides in a subduction setting. &lt;a href=&#034;https://link.springer.com/article/10.1007/s00126-019-00921-4&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Mineralium Deposita, 55, 1173-1196.&lt;/a&gt;&lt;br class='autobr' /&gt;
6. Chayka, I.F, Sobolev, A.V., Izokh, A.E., Batanova, V.G., Krasheninnikov, S.P., Chervyakovskaya, M.V., Kontonikas-Charos, A., Kutyrev, A.V., Lobastov, B.M., &amp; Chervyakovskiy, V.S. (2020). Fingerprints of kamafugite like magmas in mesosoic lamproites of the Aldan shield : evidence from olivine and olivine-hosted inclusions. &lt;a href=&#034;https://doi.org/10.3390/min10040337&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Minerals, 10, 337.&lt;/a&gt; &lt;br class='autobr' /&gt;
7. Goussin, F., Riel, N., Cordier, C., Guillot, S., Boulvais, P., Roperch, P., Replumaz, A., Schulmann, K., Dupont-Nivet, G., Rosas, F., Guo Z. (2020) Carbonated inheritance in the Eastern Tibetan lithospheric mantle : petrological evidences and geodynamic implications. &lt;a href=&#034;https://hal-insu.archives-ouvertes.fr/insu-02498157&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochemistry, Geophysics, Geosystems, 60, 957-977.&lt;/a&gt;&lt;br class='autobr' /&gt;
8. Manceau, A., Merkulova, M., Mathon, O., Glatzel, P., Murdzek, M., Batanova, V., Simionovici, A., Steinmann, S.N., Paktunc, D. (2020) The Mode of Incorporation of As(-I) and Se(-I) in Natural Pyrite Revisited. &lt;a href=&#034;https://pubs.acs.org/doi/10.1021/acsearthspacechem.9b00301&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;ACS Earth Space Chem. 4, 3, 379-390.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2019&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Airaghi, L., Janots, E., Lanari, P., de Sigoyer, J. &amp; Magnin, V. (2019). Allanite Petrochronology in Fresh and Retrogressed Garnet-Biotite Metapelites from the Longmen Shan (Eastern Tibet). &lt;a href=&#034;https://doi.org/10.1093/petrology/egy109&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Petrology, 60, 151-176.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Batanova, V.G., Thompson, J.M., Danyushevsky, L.V., Portnyagin, M.V., Garbe-Sch&#246;nberg, D., Hauri, E., Kimura J-I., Chang Q., Senda R., Goemann K., Chauvel C., Campillo S., Ionov D.A. and Sobolev A.V. (2019). New Olivine reference material for in-situ microanalysis. &lt;a href=&#034;https://doi.org/10.1111/ggr.12266&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geostandards and Geoanalytical Research, v. 43, p 453-473.&lt;/a&gt;&lt;br class='autobr' /&gt;
3. Guillot, S., Goussin, F., Airaghi, L., Replumaz, A., de Sigoyer, J. &amp; Cordier, C. (2019). How and When Did the Tibetan Plateau Grow ? &lt;a href=&#034;https://doi.org/10.15372/RGG2019126&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Russian Geology and Geophysics 60, 957-977.&lt;/a&gt;&lt;br class='autobr' /&gt;
4. Kaduri, M., Gratier, J. P., Lasserre, C., Cakir, Z. &amp; Renard, F. (2019). Quantifying the Partition Between Seismic and Aseismic Deformation Along Creeping and Locked Sections of the North Anatolian Fault, Turkey. &lt;a href=&#034;https://doi.org/10.1007/s00024-018-2027-2&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Pure and Applied Geophysics, 176, 1293-1321.&lt;/a&gt;&lt;br class='autobr' /&gt;
5. Marrocchi, Y., Euverte, R., Villeneuve, J., Batanova, V., Welsch, B., Ferriere, L. &amp; Jacquet, E. (2019). Formation of CV chondrules by recycling of amoeboid olivine aggregate-like precursors. &lt;a href=&#034;https://doi.org/10.1016/j.gca.2018.12.038&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica Et Cosmochimica Acta, 247, 121-141.&lt;/a&gt;&lt;br class='autobr' /&gt;
6. Mazza, S. E., Gazel, E., Bizimis, M., Moucha, R., Beguelin, P., Johnson, E. A., McAleer, R. J. &amp; Sobolev, A. V. (2019). Sampling the volatile-rich transition zone beneath Bermuda. &lt;a href=&#034;https://www.nature.com/articles/s41586-019-1183-6&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Nature, 569, 571, 398.&lt;/a&gt;&lt;br class='autobr' /&gt;
7. Merkulova, M., Murdzek, M., Mathon, O., Glatzel, P., Batanova, V. &amp; Manceau, A. (2019). Evidence for syngenetic micro-inclusions of As3+- and As5+-containing Cu sulfides in hydrothermal pyrite. &lt;a href=&#034;https://pubs.geoscienceworld.org/msa/ammin/article-abstract/104/2/300/568556/Evidence-for-syngenetic-micro-inclusions-of-As3&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;American Mineralogist, 104, 300-306.&lt;/a&gt;&lt;br class='autobr' /&gt;
8. Merkulova, M., Mathon, O., Glatzel, P., Rovezzi, M., Batanova, V., Marion, P., Boiron, M. C. &amp; Manceau, A. (2019). Revealing the Chemical Form of &#034;Invisible&#034; Gold in Natural Arsenian Pyrite and Arsenopyrite with High Energy-Resolution X-ray Absorption Spectroscopy. &lt;a href=&#034;https://doi.org/10.1021/acsearthspacechem.9b00099&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Acs Earth and Space Chemistry, 3, 1905-1914.&lt;/a&gt;&lt;br class='autobr' /&gt;
9. Narcisi, B., Petit, J. R., Delmonte, B., Batanova, V. &amp; Savarino, J. (2019). Multiple sources for tephra from AD 1259 volcanic signal in Antarctic ice cores. &lt;a href=&#034;https://doi.org/10.1016/j.quascirev.2019.03.005&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Quaternary Science Reviews, 210, 164-174.&lt;/a&gt;&lt;br class='autobr' /&gt;
10. Pilitsyna, A. V., Tretyakov, A. A., Degtyarev, K. E., Salnikova, E. B., Kotov, A. B., Kovach, V. P., Wang, K. L., Batanova, V. G., Plotkina, Y. V., Tolmacheva, E. V., Ermolaev, B. V. &amp; Lee, H. Y. (2019). Early Palaeozoic metamorphism of Precambrian crust in the Zheltau terrane (Southern Kazakhstan ; Central Asian Orogenic belt) : P-T paths, protoliths, zircon dating and tectonic implications. &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2018.10.033&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 324, 115-140.&lt;/a&gt;&lt;br class='autobr' /&gt;
11. Sobolev, A. V., Asafov, E. V., Gurenko, A. A., Arndt, N. T., Batanova, V. G., Portnyagin, M. V., Garbe-Schonberg, D., Wilson, A. H. &amp; Byerly, G. R. (2019). Deep hydrous mantle reservoir provides evidence for crustal recycling before 3.3 billion years ago. &lt;a href=&#034;https://doi.org/10.1038/s41586-019-1399-5&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Nature, 571, 555-559.&lt;/a&gt;&lt;br class='autobr' /&gt;
12. Sushchevskaya, N. M., Shishkina, T. A., Portnyagin, M. V., Batanova, V. G. &amp; Belyatsky, B. V. (2019). Long-Lasting Influence of the Discovery Plume on Tholeiitic Magmatism in the South Atlantic : Data on Basalts Recovered by Hole 513a, DSDP Leg 71. &lt;a href=&#034;https://doi.org/10.1134/s0016702919020083&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochemistry International, 57, 113-133.&lt;/a&gt;&lt;br class='autobr' /&gt;
13. Sushchevskaya, N. M., Belyatsky, B. V., Leitchenkov, G. L., Batanova, V. G. &amp; Sobolev, A. V. (2019). Geochemical Characteristics of Jurassic Plume Magmatism in Ahlmannryggen Massif (Queen Maud Land, East Antarctica). &lt;a href=&#034;https://doi.org/10.1134/s1028334x19050076&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Doklady Earth Sciences, 486, 529-532.&lt;/a&gt;&lt;br class='autobr' /&gt;
14. Schwartz S., Gautheron, C., Ketcham R., Brunet F., Pinna-Jamme R., Haurine F, Agranier A., Gu&#233;guen B., Riel, N., 2019. Unraveling exhumation history of ophiolite using magnetite (U-Th-Sm)/He thermometer. &lt;a href=&#034;https://doi.org/10.1016/j.epsl.2020.116359&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Earth and Planetary Science Letters, 543.&lt;/a&gt;&lt;br class='autobr' /&gt;
15. Tretyakov, A. A., Pilitsyna, A. V., Degtyarev, K. E., Salnikova, E. B., Kovach, V. P., Lee, H. Y., Batanova, V. G., Wang, K. L., Kanygina, N. A. &amp; Kovalchuk, E. V. (2019). Neoproterozoic granitoid magmatism and granulite metamorphism in the Chu-Kendyktas terrane (Southern Kazakhstan, Central Asian Orogenic Belt) : Zircon dating, Nd isotopy and tectono-magmatic evolution. &lt;a href=&#034;https://doi.org/10.1016/j.precamres.2019.105397&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Precambrian Research, 332, 28.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2018&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Airaghi, L., de Sigoyer, Guillot, S., Robert, A., Warren, C.J., Deldicque, D. (2018). The Mesozoic along-strike tectono-metamorphic segmentation of Longmen Shan (eastern Tibetan plateau). &lt;a href=&#034;https://doi.org/10.1029/2018TC005005&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Tectonics, v 37, p 4655-4678.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Baecker, B., Ott, U., Cordier, C., Folco, L., Trieloff, M., van Ginneken, M., Rochette, P. (2018). Noble gases in micrometeorites from the Transantarctic Mountains. &lt;a href=&#034;https://doi.org/10.1016/j.gca.2018.08.027&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica et Cosmochimica Acta, 242, 266-297.&lt;/a&gt;&lt;br class='autobr' /&gt;
3. Cordier C., Baecker B., Ott U., Folco L., Trieloff M. (2018). A new type of oxidized and pre-irradiated micrometeorite. &lt;a href=&#034;https://doi.org/10.1016/j.gca.2018.04.010&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica et Cosmochimica Acta, 233, 135-158.&lt;/a&gt;&lt;br class='autobr' /&gt;
4. Pilitsyna, A.V., Tretyakov, A.A., Degtyarev, K.E., Alifirova, T.A., Batanova, V., Cuthbert, S.J., Kovalchuk, E.B., Ermolaev, B.V. (2018). Multi-stage metamorphic evolution and protolith reconstruction of spinel-bearing and symplectite-bearing ultramafic rocks in the Zheltau massif, Southern Kazakhstan (Central Asian Orogenic Belt). &lt;a href=&#034;https://doi.org/10.1016/j.gr.2018.06.005&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Gondwana Research, 64, 11-34.&lt;/a&gt;&lt;br class='autobr' /&gt;
5. Prigent, C., Agard, P., Guillot, S., Godard, M., Dubacq, B. (2018). Mantle wedge deformation during subduction infancy : evidence from the base of the Semail ophiolitic mantle. &lt;a href=&#034;https://doi.org/10.1093/petrology/egy090&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Petrology, 59, 11, 2061-2092.&lt;/a&gt; (thanks to V. Batanova and V. Magnin)&lt;br class='autobr' /&gt;
6. Manceau, A., Merkulova, M., Murdzek, M., Batanova, V., Baran, R., Glatzel, P., Saikia, B.K., Paktunc, D. Lefticariu L. (2018). Chemical Forms of Mercury in Pyrite : Implications for Predicting Mercury Releases in Acid Mine Drainage Settings. &lt;a href=&#034;https://doi.org/10.1021/acs.est.8b02027&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Environmental Science &amp; Technology, 52(18),10286-10296.&lt;/a&gt;&lt;br class='autobr' /&gt;
7. Sobolev, S.V., Sobolev, A.V., Tomilenko, A.A., Kuz'min, D.V., Grakhanov, S.A., Batanova, V.G., Logvinova, A.M., Bul'bak,T.A., Kostrovitskii, S.I., Yakovlev, D.A., Fedorova, E.N., Anastasenko, G.F., Nikolenko, E.I., Tolstov, A.V., Reutskii, V.N. (2018). Prospects of search for diamondiferous kimberlites in the northeastern Siberian Platform. &lt;a href=&#034;https://doi.org/10.1016/j.rgg.2018.09.012&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Russian Geology and Geophysics, 59(10),1365-1379.&lt;/a&gt;&lt;br class='autobr' /&gt;
8. Chayka IF, Izokh AE, Sobolev AV, Batanova VG. (2018). Low-Titanium Lamproites of the Ryabinoviy Massif (Aldan Shield) : Crystallization Conditions and Lithospheric Source. &lt;a href=&#034;https://doi.org/10.1134/s1028334x18080020&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Doklady Earth Sciences, 481(2),1008-1012.&lt;/a&gt;&lt;br class='autobr' /&gt;
9. Marrocchi Y., Villeneuve J., Batanova V., Piani L. and Jacquet E. (2018). Oxygen isotopic diversity of chondrule precursors and the nebular origin of chondrules. &lt;a href=&#034;https://doi.org/10.1016/j.epsl.2018.05.042&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;EPSL, 496, 132-141.&lt;/a&gt;&lt;br class='autobr' /&gt;
10. Airaghi, L, Warren, C.J., de Sigoyer, J., Lanari, P., Magnin, V. (2018). Influence of dissolution/repricipatation reactions on metamorphic greenschist to amphibolite-facies mica 40Ar/39Ar ages in the Longmen Shan (eastern Tibet). &lt;a href=&#034;https://doi-org.insu.bib.cnrs.fr/10.1111/jmg.12420&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Metamorphic Geology.&lt;/a&gt;&lt;br class='autobr' /&gt;
11. Gazel E., Treka J., Bizimis M., Sobolev A., Batanova V., Class C., Jicha B. (2018). Long-lived source heterogeneities in the Galapagos mantle plume, G-Cubed. &lt;a href=&#034;https://doi.org/10.1029/2017GC007338&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochemistry, Geophysics, Geosystems, 19, 8, 2764-2779.&lt;/a&gt;&lt;br class='autobr' /&gt;
12. Loury C., Rolland Y., Lanari, P., Guillot S., Bosch D., Ganino C., Jourdon, A., Petit C., Gallet S., Moni&#233; P., Riel N. (2018). Permian charnockites in Pobeda area : implications for Tarim mantle plume activity and HT metamorphism in the South Tien Shan range. &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2018.01.025&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 304-307, 135-154.&lt;/a&gt;&lt;br class='autobr' /&gt;
13. Loury C., Rolland Y., Guillot S, Ganino C., Lanari P., Ganimo C., Melis R., Jourdon A., Petit C., Beyssac O., Gallet S., Moni&#233; P. (2018). Tecnonometamorphic evolution of the Atbashi high-pressure units (Kyrgyz CAOB, Tien Shan) : implications for the closure of the Turkestan Ocean and continental subduction-exhumation of the South Kazakh continental margin. &lt;a href=&#034;https://doi-org.insu.bib.cnrs.fr/10.1111/jmg.12423&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Metamoprphic Geology.&lt;/a&gt; &lt;br class='autobr' /&gt;
14. Anne-Marie Boullier, Odile Robach, Beno&#238;t Ildefonse, Fabrice Barou, David Mainprice, Tomoyuki Ohtani, and Koichiro Fujimoto. (2018). High stresses stored in fault zones : example of the Nojima fault (Japan). &lt;a href=&#034;https://doi.org/10.5194/se-9-505-2018&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Solid Earth (SE), 9, 505-529.&lt;/a&gt; &lt;br class='autobr' /&gt;
15. Asafov E.V., Sobolev A.V., Gurenko A.A., Arndt N.T., Batanova V.G., Portnyagin M.V., Garbe-Sch&#246;nberg D., Krasheninnikov S.P. (2018). Belingwe komatiites (2.7 Ga) originate from a plume with moderate water content, as inferred from inclusions in olivine. &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2017.11.002&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chemical Geology, 478, 39-59.&lt;/a&gt;&lt;br class='autobr' /&gt;
16. Batanova V.G., Sobolev A.V. and Magnin V. Trace element analysis by EPMA in geosciences : detection limit, accuracy and precision. (2018). &lt;a href=&#034;https://doi.org/10.1088/1757-899X/304/1/012001&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;IOP Conference Series : Materials Science and Engineering, 304 (1), 012001.&lt;/a&gt;&lt;br class='autobr' /&gt;
17. Janots, E., Austrheim, H., Spandler, C., Hammerli, J., Trepmann, C.A., Berndt, J., Magnin, V., Kemp, A.I.S. (2018). Rare earth elements and Sm-Nd isotope redistribution in apatite and accessory minerals in retrogressed lower crust material (Bergen Arcs, Norway). &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2017.10.007&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chem. Geol. 484, 120-135.&lt;/a&gt;&lt;br class='autobr' /&gt;
18. Grand'Homme, A., Janots, E., Seydoux-Guillaume, A.M., Guillaume, D., Magnin, V., H&#246;velmann, J., H&#246;schen, C., Boiron, M.C. (2018). Mass transport and fractionation during monazite alteration by anisotropic replacement. &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2017.10.008&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chem. Geol. 584, 51-68.&lt;/a&gt;&lt;br class='autobr' /&gt;
19. Pilitsyna A.V., Tretyakov A.A., Degtyarev K.E., Simon J., Cuthbert S.J., Batanova V.G., Kovalchuk E.V. (2018). Eclogites and garnet clinopyroxenites in the Anrakhai Complex, Central Asian Orogenic Belt, Southern Kazakhstan : P-T evolution, protoliths and some geodynamic implications. &lt;a href=&#034;https://doi.org/10.1016/j.jseaes.2017.03.027&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Asian Earth Sciences, 153, 325-345.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2017&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Airaghi L., Lanari P., de Sigoyer J., Guillot S. (2017). Microstructural vs compositional preservation and preudomorphic replacement of muscovite in deformed metapelites from the Longmen Shan (Sichuan, China). &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2017.03.013&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, v282-283, 262-280.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Airaghi L., de Sigoyer J., Lanari P., Vidal O., Guillot S., Monie P., Sautter B., Xibin Tan. (2017). Total exhumation across the Beichuan fault in the Longmen Shan, Sichuan, (eastern Tibetan plateau, China) : constraints from petrology and thermobarometry. &lt;a href=&#034;https://doi.org/10.1016/j.jseaes.2017.04.003&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Asian Eath Sciences, 140, 108-121.&lt;/a&gt;&lt;br class='autobr' /&gt;
3. Batanova V.G., Sobolev A.V., Magnin V. (2017). Trace element analysis in EPMA : current state and perspectives. In Book of Tutorials and Abs. EMAS/IUMAS, Modern developments and applications in microbeam analysis, invited lecture, 55-73.&lt;br class='autobr' /&gt;
4. Cordier C., Sauzeat L., Arndt N., Boullier, A.-M., Batanova V., Barou F. (2017). Quantitative modelling of the apparent decoupling of Mg# and Ni in kimberlitic olivine margins : a reply to the comment on Cordier et al. (2015) by Moore A. &lt;a href=&#034;https://doi.org/10.1093/petrology/egx013&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Petrology, 58, 2, 391-393&lt;/a&gt;&lt;br class='autobr' /&gt;
5. Di Rosa, M., De Giorgi, A., Marroni, M., &amp; Vidal, O. (2017). Syn-convergence exhumation of continental crust : evidence from structural and metamorphic analysis of the Monte Cecu area, Alpine Corsica (Northern Corsica, France). &lt;a href=&#034;https://doi.org/10.1002/gj.2857&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geological Journal, 52, 6, 919&#8211;937.&lt;/a&gt;&lt;br class='autobr' /&gt;
6. Kaduri M., Gratier J-P., Renard F., Cakire Z., Lasserre C. (2017). The implication of fault zone transformation on fault aseismic creep : example from the North Anatolian Fault, Turkey. &lt;a href=&#034;https://doi.org/10.1002/2016JB013803&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;JGR Solid Earth, 122, 6, 4208-4236.&lt;/a&gt; (Thanks to V. Magnin and V. Batanova)&lt;br class='autobr' /&gt;
7. Krasheninnikov S.P., Sobolev A.V., Batanova V.G., Kargaltsev A.A., Borisov A.A. (2017). Experimental test of olivine-melt equilibrium models at high temperature. &lt;a href=&#034;http://dx.doi.org/10.1134/S1028334X17080153&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Doklady Russian Academy of Sciences, 475, 919-922.&lt;/a&gt;&lt;br class='autobr' /&gt;
8. Merkulova, M. V., Munoz, M., Brunet, F., Vidal, O., Hattori, K., Vantelon, D., et al. (2017). Experimental insight into redox transfer by iron- and sulfur-bearing serpentinite dehydration in subduction zones. &lt;a href=&#034;https://doi.org/10.1016/j.epsl.2017.09.009&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Earth And Planetary Science Letters, 479, 133&#8211;143.&lt;/a&gt;&lt;br class='autobr' /&gt;
9. Trela, J., Gazel, E., Moore, L., Sobolev, A, Bizimis, M., Jicha B, Batanova V. (2017). The hottest lavas of the Phanerozoic and the survival of deep Archean reservoirs. &lt;a href=&#034;http://dx.doi.org/10.1038/ngeo2954&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Nature Geosciences, 10, 451-456.&lt;/a&gt;&lt;br class='autobr' /&gt;
10. Zamboni, D., Trela, J., Gazel E., Sobolev A.V., Cannatelli C., Lucchi F., Batanova V.G., De Vivo B. (2017). New insights into the Aeolian Islands and other arc source compositions from high-precision olivine chemistry. &lt;a href=&#034;https://repositorio.uchile.cl/bitstream/handle/2250/168782/New-insights-into-the-Aeolian-Islands.pdf?sequence=1&amp;isAllowed=y&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 272-273, 185-191.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2016&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Fazio, A., D'Orazio, M., Cordier, C., &amp; Folco, L. (2016). Target-projectile interaction during impact melting at Kamil Crater, Egypt. &lt;a href=&#034;https://doi.org/10.1016/j.gca.2016.02.003&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica et Cosmochimica Acta, 180, 33&#8211;50.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Cordier C., Sauzeat L., Arndt N., Boullier, A.-M., Batanova V., Barou F. (2016). The Geochemical Complexity of Kimberlite Rocks and their Olivine Populations : a Reply to the Comment on Cordier et al. (2015) by Andrea Giuliani &amp; Stephen F. Foley. &lt;a href=&#034;https://doi.org/10.1093/petrology/egw027&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Petrology, 57 , 927-931.&lt;/a&gt;&lt;br class='autobr' /&gt;
3. Grand'Homme A., Janots E., Seydoux-Guillaume A-M., Guillaume D., Bosse V., Magnin V. (2016). Partial resetting of the U-Th-Pb systems in experimentally altered monazite : Nanoscale evidence of incomplete replacement. &lt;a href=&#034;https://doi.org/10.1130/G37770.1&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geology, 44, 6, 431-434.&lt;/a&gt;&lt;br class='autobr' /&gt;
4. Savelieva G.N., Batanova V.G., Sobolev A.V. (2016). Pyroxene&#8211;Cr-spinel exsolution in mantle lherzolites of the Syum-Keu ophiolite massif (Arctic Urals). &lt;a href=&#034;https://doi.org/10.1016/j.rgg.2015.12.001&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Russian Geology and Geophysics, 57, 10, 1419&#8211;1436.&lt;/a&gt;&lt;br class='autobr' /&gt;
5. Merkulova M., Munoz M., Vidal O., Brunet F. (2016). Role of iron content on serpentinite dehydration depth in subduction zones : Experiments and thermodynamic modeling. &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2016.09.007&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 264, 441-452.&lt;/a&gt; &lt;br class='autobr' /&gt;
6. Delavault H., Chauvel C., Thomassot E., Colin W. Devey C.W., Dazas B. (2016). Sulfur and lead isotopic evidence of relic Archean sediments in the Pitcairn mantle plume. &lt;a href=&#034;https://doi.org/10.1073/pnas.1523805113&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;PNAS, 113, 12952&#8211;12956.&lt;/a&gt;&lt;br class='autobr' /&gt;
7. Lafay R., Montes-Hernandez G., Janots E., Mu&#241;oz M., Auzende A-L. Gehin A., Chiriac R., Proux O. (2016). Experimental investigation of As, Sb and Cs behaviour during olivine serpentinization in hydrothermal alkaline systems. &lt;a href=&#034;https://doi.org/10.1016/j.gca.2016.02.014&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica et Cosmochimica Acta, 179, 177-202.&lt;/a&gt;&lt;br class='autobr' /&gt;
8. Loury, C., Rolland, Y., Cenki-Tok, B., Lanari, P., Guillot, S. (2016). Late Paleozoic evolution of the South Tien Shan : Insights from P-T estimates and allanite geochronology on retrogressed eclogites (Chatkal range, Kyrgyzstan). &lt;a href=&#034;https://doi.org/10.1016/j.jog.2015.06.005&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Geodynamics, 96, 62-80.&lt;/a&gt;&lt;br class='autobr' /&gt;
9. Margirier, A., Audin, L., Robert, X., Herman, F., Ganne, J., Schwartz, S. (2016). Time and mode of exhumation of the Cordillera Blanca batholith (Peruvian Andes). &lt;a href=&#034;https://doi.org/10.1002/2016JB013055&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. Geophys. Res. Solid Earth, 121, 6235-6249.&lt;/a&gt;&lt;br class='autobr' /&gt;
10. Narcisi B., Petit J.R., Langone A., Stenni B. (2016). A new Eemian record of Antarctic tephra layers retrieved from the Talos Dome ice core (Northern Victoria Land). &lt;a href=&#034;https://doi.org/10.1016/j.gloplacha.2015.12.016&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Global and Planetary Change, 137, 69-78.&lt;/a&gt;&lt;br class='autobr' /&gt;
11. Sobolev A.V., Asafov E.V., Gurenko A.A., Arndt N.T., Batanova V.G., Portnyagin M.V., Garbe-Sch&#246;nberg D., Krasheninnikov S.P. (2016). Komatiites reveal an Archean hydrous deep-mantle reservoir. &lt;a href=&#034;https://doi.org/10.1038/nature17152&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Nature, 531, 628- 632.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2015&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Loury, C., Rolland, Y., Guillot, S., Mikolaichuk, A. V, Lanari, P., Bruguier, O., Bosch, D. (2015). Crustal-scale structure of South Tien Shan : implications for subduction polarity and Cenozoic reactivation, in : Brunet, M.F., McCann, T., Sobel, E.R. (Eds.), Geological Evolution of Central Asian Basins and the Western Tien-Shan Range. &lt;a href=&#034;https://www.researchgate.net/publication/279886699_Crustal-scale_structure_of_South_Tien_Shan_Implications_for_subduction_polarity_and_Cenozoic_reactivation&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;The Geological Society of London, 427.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Cordier C., Sauzeat L., Arndt N., Boullier, A.-M., Batanova V., Barou F. (2015). Metasomatism of the lithospheric mantle immediately precedes kimberlite eruption : new evidence from olivine composition and microstructures. &lt;a href=&#034;https://doi.org/10.1093/petrology/egv054&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Petrology, 56, 1775-1796.&lt;/a&gt; &lt;br class='autobr' /&gt;
3. Batanova, V.G., Sobolev, A.V., Kuzmin, D.V. (2015). Trace element analysis of olivine : High precision analytical method for JEOL JXA-8230 electron probe microanalyser. &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2015.10.042&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chemical Geology, 419, 149-157.&lt;/a&gt;&lt;br class='autobr' /&gt;
4. Delavault, H., Chauvel, C., Sobolev, A., Batanova, V. (2015). Combined petrological, geochemical and isotopic modeling of a plume source : Example of Gambier Island, Pitcairn chain. &lt;a href=&#034;https://doi.org/10.1016/j.epsl.2015.06.013&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Earth and Planetary Science Letters, 426, 23-35.&lt;/a&gt;&lt;br class='autobr' /&gt;
5. Sobolev, N.V., Sobolev, A. V., Tomilenko, A. A., Batanova, V. G., Tolstov, A.V., Logvinova, A. M., Kuz'min, D. V. (2015). Unique compositional peculiarities of olivine phenocrysts from the post flood basalt diamondiferous Malokuonapskaya kimberlite pipe, Yakutia. &lt;a href=&#034;https://doi.org/10.1134/S1028334X15080164&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Doklady Earth Sciences, 463, 2, 828-832.&lt;/a&gt;&lt;br class='autobr' /&gt;
6. Sobolev, N.V., Sobolev, A. V., Tomilenko, A. A., Kovyazin, S. V., Batanova, V. G., Kuz'min, D. V. (2015). Paragenesis and complex zoning of olivine macrocrysts from unaltered kimberlite of the Udachnaya-East pipe, Yakutia : relationship with the kimberlite formation conditions and evolution. &lt;a href=&#034;https://doi.org/10.1016/j.rgg.2015.01.019&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Russian Geology and Geophysics, 56, 1-2, 260-279.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2014&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Fazio A., Folco L., D'Orazio M., Frezzotti M. L., Cordier C. (2014). Shock metamorphism and impact melting in small impact craters on Earth : Evidence from Kamil Crater, Egypt. &lt;a href=&#034;https://doi.org/10.1111/maps.12385&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Meteoritics and Planetary Science, 49, 2175&#8211;2200.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Pelleter A.-Z., Caroff M., Cordier C., Bachelery P., Nehlig P., Debeuf D., Arnaud N. (2014). Melilite-bearing lavas in Mayotte (France) : an insight into the mantle source below the Comores. &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2014.09.012&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 208-209, 281-297.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;a href=&#034;https://www.isterre.fr/english/platforms-services-1235/isterre-microanalytical-platform-imap&#034;&gt;BACK&lt;/a&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;&lt;/div&gt;
		
		</content:encoded>


		

	</item>
<item xml:lang="en">
		<title>Publications</title>
		<link>https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/article/publications.html</link>
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		<dc:date>2022-01-06T21:22:23Z</dc:date>
		<dc:format>text/html</dc:format>
		<dc:language>en</dc:language>
		<dc:creator>Olga DIMITRIEV, Valentina BATANOVA</dc:creator>



		<description>
&lt;p&gt;List of publications IMAP &lt;br class='autobr' /&gt;
Submitted and In revision &lt;br class='autobr' /&gt;
1. Chowdhury, R., BoudGondwanajehem, R., Such&#233;ras-Marx, B., Dupraz, M., Kulow, A., Cesar da Silva, J., Hazemann, J-L., Aubry, M-P., P&#233;rez, J., Fernandez-Martinez, A., Giraud, F.The 3D submicron-scale skeletal reconstruction of Nannoconus (Cretaceous calcareous nannofossil) - Insights on biomineralization. In revision, Biogeosciences. &lt;br class='autobr' /&gt;
2. Esteban, M., Sobolev, A.V., Batanova, V. et al. Source signature and contamination history of the (&#8230;)&lt;/p&gt;


-
&lt;a href="https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/" rel="directory"&gt;ISTerre MicroAnalytical Platform IMAP&lt;/a&gt;


		</description>


 <content:encoded>&lt;div class='rss_texte'&gt;&lt;h3 class=&#034;spip&#034;&gt;List of publications IMAP&lt;/h3&gt;
&lt;p&gt;&lt;strong&gt;Submitted and In revision&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Chowdhury, R., BoudGondwanajehem, R., Such&#233;ras-Marx, B., Dupraz, M., Kulow, A., Cesar da Silva, J., Hazemann, J-L., Aubry, M-P., P&#233;rez, J., Fernandez-Martinez, A., Giraud, F.The 3D submicron-scale skeletal reconstruction of Nannoconus (Cretaceous calcareous nannofossil) - Insights on biomineralization. In revision, Biogeosciences.&lt;/p&gt;
&lt;p&gt;2. Esteban, M., Sobolev, A.V., Batanova, V. et al. Source signature and contamination history of the 2.69 Ga Belingwe greenstone belt komatiites, revealed by olivine-hosted melt inclusions. Under Review, Chemical Geology.&lt;/p&gt;
&lt;p&gt;3. Kazzy, C., Sobolev, A.V., Leger, J. et al. High-Precision In-Situ H2O Quantification in Silicate Glasses by Raman and LIBS Spectroscopy to Sub-0.1 wt% Levels. Under Review, Chemical Geology.&lt;/p&gt;
&lt;p&gt;4. Vezinet, A., Sobolev, A.V., Moyen, J-F. et al. The sedimentary succession of the eastern and northern Kaapvaal craton: an Archean analog of the Phanerozoic Canadian Cordillera? In revision, Gondwana Research.&lt;/p&gt;
&lt;p&gt;5. Janots, E., Seydoux-Guillaume, A.M., Batanova, V., Magnin, V., Bosse, V., and B. Malvoisin. Reaction-Induced Cracking in Zircon: A Key to Deciphering Water's Geological Legacy. Submitted, Geology&lt;/p&gt;
&lt;p&gt;6. Vezinet, A., Brunet, F., Sobolev, A.V., and Molina-Ormazabal, D. Fluid-pulse during subduction revealed by chemical gradients in garnet growth zones. In revision, Nature Communications.&lt;/p&gt;
&lt;p&gt;7. Sobolev, A.V., et al., Discovery of the Hottest Phanerozoic Mantle Plume and Its Geodynamic Significance. In revision, Nature Communications.&lt;/p&gt;
&lt;p&gt;8. Malvoisin, B., D&#246;rfler, P., Auzende, A.-L., Brunet, F., Cannat, M., Austrheim, H., and Kaczmarek, M.-A., Magnetite production in mesh texture during serpentinization, a marker of H2 diffusion. In revision, Journal of Petrology.&lt;/p&gt;
&lt;p&gt;9. Straub, S. The Origin of Na2O at Popocat&#233;petl Volcano, Trans-Mexican Volcanic Belt: Evidence for Concurrent Mafic and Silicic Mantle Fluxes in Volcanic Arcs. In Revision, The Canadian Journal of Mineralogy and Petrology.&lt;/p&gt;
&lt;p&gt;&lt;strong&gt; &lt;strong&gt;2026&lt;/strong&gt; &lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Afanassieff, N. et al. Integrated LIBS-EPMA and Multivariate Statistical Analysis for Ge-Bearing Mineral Characterization: A Tool for High-Tech Critical Metals Exploration. &lt;a href=&#034;https://doi.org/10.3390/min16070685&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Minerals 16, 685 (2026),&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;2. Bertauts, M. et al. Mesozoic fluid mixing and Alpine remobilization of Mississippi Valley-type (MVT) F&#8211;Ba&#8211;Pb&#8211;Zn&#8211;(Ag) veins in the Grand Ch&#226;telard district (Western Alps). &lt;a href=&#034;https://doi.org/10.1007/s00126-026-01475-y&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Mineralium Deposita (2026).&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;3. Bienveignant, D. et al. Long-Term Deformation in the Alpine-Provence Foreland Constrained by In Situ Calcite U-Pb &lt;a href=&#034;https://doi.org/10.1029/2026TC009455&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Dating. Tectonics 45, e2026TC009455 (2026).&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;4. Gunia, M. et al. A remnant of the Palaeotethys break-up: The Variscan Chamrousse ophiolite (Western Alps). &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2026.108749&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos 544-545, 108749 (2026).&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;5. Mobasheri, M. et al. Neodymium, Hf, Os, and U-Pb isotope study of Permian Komatiites from Mashhad, Iran. &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2026.123331&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chemical Geology, 123331 (2026).&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt; &lt;strong&gt;2025&lt;/strong&gt; &lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. D. Bienveignant, S. Schwartz, Y. Rolland, M. Bernet, A. Vezinet, J. L&#233;ger, M. Bertauts, M. Huraut, C. Cordier, T. Dumont, V. Magnin, M. Balvay, A. Bilau, L. Boschetti, J. Nomade. In situ U-Pb dating of upper triassicmagmatic flows (Spilite) in the External Western Alps (Pelvoux massif): A peripheral CAMP activity? (2025) &lt;a href=&#034;https://doi.org/10.1016/j.jog.2025.102113&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Journal of Geodynamics, 165, 102113,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;2. L. Boschetti, C. Boullerne, Y. Rolland, S. Schwartz, G. Milesi, D. Bienveignant, E. Macret, D. Charpentier, P. M&#252;nch, J. Mercadier, A. Iemmolo, P. Lanari, M. Rossi, F. Mouthereau,&lt;br class='autobr' /&gt;
Shear zone memory revealed by in-situ Rb-Sr and 40Ar/39Ar dating of Pyrenean and Alpine tectonic phases in the external Alps, &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2025.108168&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, Volumes 514&#8211;515, 2025, 108168, ISSN 0024-4937,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;3. Charbel Kazzy, Alexander V. Sobolev, Adrien Vezinet, Valentina G. Batanova, Evgeny V. Asafov, Eero Hanski, Igor S. Puchtel, Andrey E. Izokh, Leonid V. Danyushevsky, V&#361; Ho&#224;ng Ly, Can Pham-Ngoc, Tran Tuan Anh.(2025) Strontium isotope and trace element compositions of olivine-hosted melt inclusions from the Song Da ultramafic volcanic suite, northern Vietnam: Implications for chemical heterogeneity in mantle plumes. &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2024.122564&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chem. Geol. 674, 122564,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;4.Gunia, M., Cordier, C., Janots, E., Vezinet, A., Milloud, V., Jacob, J.-B., Guillot, S. The Chamrousse ophiolite (Western Alps, France) is not a Cambro-Ordovician Ocean. (2025) &lt;a href=&#034;https://doi.org/10.1111/ter.12770&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Terra Nova, Volume 37, Issue 4,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;5. Legros Emma, Malvoisin Benjamin, Brunet Fabrice, El Yousfi Zaccaria, Batanova Valentina, Sobolev Alexander, Auzende Anne-Line. Massive Mg-rich fluid release across the brucite + serpentine reaction in subduction zones. (2025) &lt;a href=&#034;https://doi.org/10.1016/j.epsl.2025.119602&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Earth and Planetary Science Letters, 671, 119602,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;6. Lorenzo Cappelli, Paul A. Wallace, Evelyne Mbede, Shimba Kwelwa, Edista Abdallah, Gerald G.J. Ernst, Karen Fontijn. Pre-eruptive reservoir conditions of the peralkaline Rungwe Pumice Plinian Eruption (Tanzania) From Ha&#252;yne-Hosted Melt Inclusions. (2025) &lt;a href=&#034;https://doi.org/10.1093/petrology/egaf079&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Journal of Petrology. Volume 66, Issue 9, September 2025, egaf079,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;7. Mohsen Mobasheri, Nicholas Arndt, Carole Cordier, Alexander Sobolev, Habibollah Ghasemi, Claudio Marchesi, Mossaie Sabzehei, Carlos J. Garrido. Petrogenesis and Geochemistry of Upper Paleozoic Komatiites (Mashhad, NE Iran) (2025) &lt;a href=&#034;https://doi.org/10.1093/petrology/egae131&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. Petrology Volume 66, Issue 1, January 2025, egae131,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;8. Diego Molina-Ormazabal, Mathilde Radiguet, Jannes M&#252;nchmeyer, Nicolas Hernandez-Soto, Adrien Vezinet, Lea Pousse-Beltran, Catalina Castro, Marie&#8208;pierre Doin, Juan Carlos Baez, Marcos Moreno, Andres Tassara, Philippe Durand, Anne Socquet. Slip Modes Along a Structurally&#8208;Driven Earthquake Barrier in Chile. (2025) &lt;a href=&#034;https://doi.org/10.1029/2024JB030796&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Journal of Geophysical Research: Solid Earth, 130 (6),&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;9. Pitard, P., Replumaz, A., Leloup, P.-H., Chevalier, M.-L., Wang, S., Bai, M., X. Ou, Bernet, M., Balvay, M., Sobel, E.R., Vezinet, A., Gautheron, C., J. de Sigoyer, J., Li, H. No deformation propagation outward of the plateau across the Yalong Thrust Belt in Southeast Tibet. (2025) &lt;a href=&#034;https://doi.org/10.1016/j.tecto.2025.230855&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Tectonophysics, 913, 230855.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;10. Adrien Vezinet, Aleksandr V. Chugunov, Alexander V. Sobolev, Charitra Jain, Stephan V. Sobolev, Evgeny V. Asafov, Valentina G. Batanova, Nicholas T. Arndt, Leonid V. Danyushevsky, and John W. Valley. Growth of continental crust and lithosphere subduction in the Hadean revealed by geochemistry and geodynamics, &lt;a href=&#034;https://doi.org/10.1038/s41467-025-59024-6&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Nature Communications, 2025, 16 (1), pp.3850.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;11. Vezinet, A., Flores-Rojas, J.*, Sobolev, A.V., L&#233;ger, J., Chugunov, A.V.*, Batanova, V.G., Elburg, M.A., Hofmann, A., Balvay, M. and Paradis, N. Igneous apatite geochemistry indicates early cratonization of continents. 2025. &lt;a href=&#034;https://doi.org/10.1016/j.precamres.2025.107927&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Precambrian Research.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;12. B. Wild, J. Bas-Lorillot, D. Daval. Effect of pH temperature on olivine dissolution anisotropy. (2025). &lt;a href=&#034;https://doi.org/10.1016/j.gca.2025.08.004&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica et Cosmochimica Acta, 405, 55-65.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;13. Straub S., Batanova V., Sobolev A., Arturo G&#243;mez-Tuena, Ramon Espinasa-Perena, Ilya N Bindeman, Finlay M. Stuart, Elisabeth Widom, Yoshiyuki Iizuka. Olivines Fo-Ni-MnO systematics in the Trans-Mexican Volcanic Belt: evidence for cool and silicic primary arc magmas&#034; &lt;a href=&#034;https://doi.org/10.1093/petrology/egaf094&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. Petrology, egaf094,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;14. Selina Reigl, Elisabeth Wagner, Carlos Pimentel, Werner Kunz, Alexander E. S. Van Driessche, and Matthias Kellermeier; Gypsum Gardens: Self-Assembled Tubular Structures of Calcium Sulfate with Relevance for the Detection of Extraterrestrial Life; &lt;a href=&#034;https://doi.org/10.1002/anie.202508098&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Angew. Chem. Int. Ed. 2025, e202508098.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt; &lt;strong&gt;2024&lt;/strong&gt; &lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Bertauts, M., Vezinet, A., Janots, E., Rossi, M., Duhamel-Achin, I., Lach, Ph., &amp; Lanari, P. (2024) Cenozoic Pb-Zn-Ag mineralization in the Western Alps. &lt;a href=&#034;https://doi.org/10.1130/G51818.1&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;&lt;i&gt;Geology &lt;/i&gt; 52 (5).&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;2. Charbel Kazzy, Alexander V. Sobolev, Valentina G. Batanova, Evgeny V. Asafov, Eero Hanski, Igor S. Puchtel, Andrey E. Izokh, Ly Vu Hoang, Tran Tuan Anh. Study of melt inclusions from Song Da suite, northern Vietnam reveal high Ti component and high water content in the primary melt. &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2024.122219&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chem Geol. 662, 122219,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;3. Anfisa Skoblenko, Kirill Degtyarev, Alexey Travin, Valentina Batanova, Nadezhda Kanygina, Sergei Skuzovatov, Alexander Larionov.(2024) Two episodes of Early Palaeozoic high-pressure metamorphism in North Balkhash ophiolite zone (Central Kazakhstan, western Central Asian Orogenic Belt): evidence for tectonic evolution of Junggar&#8211;Balkhash Ocean. &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2024.107672&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 482-483,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;4. Sergei Yu. Skuzovatov, Anfisa V. Skoblenko, Adrien Vezinet, Anas A. Karimov, Tatsuki Tsujimori. (2024). The impact of exhumation onto fluid-mobile element budget andRb-Sr isotope heterogeneity of the subducted eclogitic crust (Alag-Khadny, SW Mongolia). &lt;a href=&#034;https://doi.org/10.1007/s00410-024-02179-0&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Contribution to Mineralogy and Petrology, 179, 100,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;5.Chloe Seibert, Christian Beck, Nathalie Feuillet, Eva Moreno, Denise Pons, Chris Goldfinger, Gueorgui Ratzov, Guillaume St-Onge, Arthur Bieber, Pierre Morena, Jason Patton, Valentina Batanova, Rene Maury. (2024). Late Pleistocene charcoal-rich sediments in the Puerto Rico Trench, possible remnants of gigantic wildfires in North-Eastern South America. &lt;a href=&#034;https://doi.org/10.1016/j.palaeo.2024.112497&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Palaeogeography, Palaeoclimatology, Palaeoecoloyg, 655.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;6. Lara Maldanis, David Fernandez-Remolar, Laurence Lemelle, Manuel Guizar-Sicairos,, Mirko Holler, Francisco Mateus Cirilo da Silva, Val&#233;rie Magnin, Michel Mermoux, Alexandre Simionovici. (2024). Unveiling challenging microbial fossil biosignatures from Rio Tinto with micro-to-nanoscale chemical and ultrastructural imaging. &lt;a href=&#034;https://doi.org/10.1089/ast.2023.0127&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Astrobiology, 67, 721-733.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;7. Mobasheri, M., Arndt, N., Cordier, C., Sobolev, A., Ghasemi, H., Garrido, C.J. (2024) Upper Paleozoic komatiites near Mashhad, NE Iran. &lt;a href=&#034;https://doi-org.insu.bib.cnrs.fr/10.1130/G52289.1&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geology, 52, 759-763.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;8. Van Maldeghem F., Maeda R., Soens B., Suttle M. D., Kr&#228;mer Ruggiu L., Cordier C., Yamaguchi A., Schmitz B., Claeys P., Folco L., Goderis S. (2024) Chrome-rich spinels in micrometeorites from modern Antarctic sedimentary deposits. &lt;a href=&#034;https://doi.org/10.1016/j.epsl.2024.118837&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Earth and Planetary Science Letters, 641, 118837.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt; &lt;strong&gt;2023&lt;/strong&gt; &lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Batanova, V.G., Sobolev, A.V. (2023) Development of Reference Materials for Microanalysis in Geosciences: The Case of Olivine MongOL Sh11&#8211;2. &lt;a href=&#034;https://doi.org/10.1093/micmic/ozad067.101&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Microscopy and Microanalysis, 29 (Suppl1), 227.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;2. Gavrilenko, M., Batanova, V.G., Llovet, X., Krasheninnikov, S., Koshlyakova, A., Sobolev, A.V. (2023) Secondary fluorescence effect quantification of EPMA analyses of olivine grains embedded in basaltic glass. &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2023.121328&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chemical Geology, 621, 121328.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;3. Llovet, X., Gavrilenko, M., Batanova, V.G., Sobolev A.V. (2023) Element Depletion Due to Missing Boundary Fluorescence in Electron Probe Microanalysis: The Case of Ni in Olivine. &lt;a href=&#034;https://doi.org/10.1093/micmic/ozad100&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Microscopy and Microanalysis,19, 1595.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;4. Migdisova N. A., Sushchevskaya N. M., Portnyagin M. V., Shishkina T. A., Kuzmin D. V. &amp; Batanova V. G. (2023) Composition of Phenocrysts in Lamproites of Gaussberg Volcano, East Antarctica. &lt;a href=&#034;https://doi.org/10.1134/S0016702923090082&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochemistry International, 61, 911.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;5. Milyukova, A., Skoblenko, A., Dilek, Y., Wang, K.L., Batanova, V. &amp; Degtyarev, K.E. (2023). Geochemistry, mineral chemistry and Re&#8211;Os isotopes of refractory peridotites of the North Balkhash ophiolite zone in the West Central Asian Orogenic Belt (Central Kazakhstan): multi&#8211;stage melt evolution of a Late Precambrian forearc mantle. &lt;a href=&#034;https://doi.org/10.1144/jgs2023-091&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. Geological Society, 180.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;6. Moya, A., Giraud, F., Molinier, V., Perrette, Y., Charlet, L., Van Driessche, A., Fernandez-Martinez, A. (2023). Exploring carbonate rock wettability across scales: role of (bio)minerals. &lt;a href=&#034;https://doi.org/10.1016/j.jcis.2023.03.197&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. Colloid and Interface Science, 642, 747-756.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;7. Skoblenko (Pilitsyna), A.V., Kanygina, N.A., Dubenskiy, A.S., Batanova, V.G., Dilek, Y., Sheshukov, V.S., &amp; Serov, P.A. (2023). High-pressure metamorphism of Precambrian continental crust in the southwestern part of the Central Asian Orogenic Belt (South Kazakhstan and North Tien Shan) and tectonic implications for the evolution of the Palaeo-Asian Ocean. &lt;a href=&#034;https://doi.org/10.1017/S0016756823000626&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geological Magazine, 160, 1624.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;8. Straub, S., Batanova, V., Sobolev, A., G&#243;mez-Tuena, A., Espinasa-Perena, R., Lindsey Fleming, W., Bindeman, I.N., Stuart, F. M., Widom, E. &amp; Iizuka, Y. (2023) The systematics of olivine CaO + Cr-spinel in high-Mg# arc volcanic rocks: evidence for in-situ mantle wedge depletion at the arc volcanic front. &lt;a href=&#034;https://doi.org/10.1093/petrology/egad085&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J.Petrology, 64, 12.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;9. Jacob J.B., Janots E., Cordier C., Guillot S. (2023) Discovery of Variscan orogenic peridotites in the Pelvoux Massif (Western Alps, France). &lt;a href=&#034;https://doi.org/10.1051/bsgf/2022021&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;BSGF &#8211; Earth Sciences Bulletin, 194, 2.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;10. Eslami A., Malvoisin B., Brunet F. Hydrothermal alteration of chromitite-dunite pairs from the Sabzevar ophiolite (NE Iran): Chemical and nano-textural evolution of Cr-spinel (2023). &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2023.107093&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 442-443,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;11. William Carlin, Benjamin Malvoisin, Bruno Lanson, Fabrice Brunet, Nathaniel Findling, Martine Lanson, Val&#233;rie Magnin, Tiphaine Fargetton, Laurent Jeannin, Olivier Lhote; FeIII-substituted brucite: hydrothermal synthesis from (Mg0.8,FeII 0.2)-brucite, crystal chemistry and relevance to the alteration of ultramafic rocks(2023). &lt;a href=&#034;https://doi.org/10.1016/j.clay.2023.106845&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Applied Clay Science, 234, 106845,&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2022&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Arndt, N., Cordier, C., Boullier, A. M., Batanova, V., Magnin, V. &amp; Findling, N. (2022). Olivine in Kimberlites and Related Rocks - Macrocrysts, Dunitic Nodules and Megacrysts from the Same Metasomatized Source. &lt;a href=&#034;https://doi.org/10.1093/petrology/egac063&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Journal of Petrology 63, 20.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Jacob, J.- B., Janots, E., Guillot, S., Rubatto, D., Fr&#233;ville, K., Melleton, J., Faure, M. (2022) HT overprint of HP granulites in the Oisans&#8211;Pelvoux massif: implications for the dynamics of the Variscan collision in the external Western Alps. &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2022.106650&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;LITHOS, Volume 416, article id. 106650.&lt;/a&gt;&lt;br class='autobr' /&gt;
3. Koshlyakova, A., Sobolev, A.V., Krasheninnikov, S., Batanova, V.G. &amp; Borisov, A. (2022) Ni partitioning between olivine and highly alkaline melts: An experimental study. &lt;a href=&#034;https://www.sciencedirect.com/science/article/pii/S0009254121005581?via%3Dihub&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chemical Geology, 587, 120615&lt;/a&gt;. &lt;br class='autobr' /&gt;
4. Manceau, A., Simionovici, A., Findling, N., Glatzel, P., Detlefs, B., Wegorzewski, A.V., Mizell, K., Hein, J.R., Koschinsky, A. (2022). Crystal Chemistry of Thallium in Marine Ferromanganese Deposits. &lt;a href=&#034;https://doi.org/10.1021/acsearthspacechem.1c00447&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;ACS Earth Space Chem., 6, 1269.&lt;/a&gt;&lt;br class='autobr' /&gt;
5. Manceau, A., Paul, S.A.L., Simionovici, A., Magnin, V., Balvay, M., Findling, N., Rovezzi, M., Muller, S., Garbe-Sch&#246;nberg, D., Koschinsky, A. (2022). Fossil Bioapatites with Extremely High Concentrations of Rare Earth Elements and Yttrium from Deep-Sea Pelagic Sediments. &lt;a href=&#034;https://doi.org/10.1021/acsearthspacechem.2c00169&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;ACS Earth Space Chem., 6, 8.&lt;/a&gt;&lt;br class='autobr' /&gt;
6. Marrocchi, Y., Piralla, M., Regnault, M., Batanova, V., Villeneuve, J. &amp; Jacquet, E. (2022). Isotopic evidence for two chondrule generations in CR chondrites and their relationships to other carbonaceous chondrites. &lt;a href=&#034;https://doi.org/10.1016/j.epsl.2022.117683&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Earth and Planetary Science Letters 593, 9.&lt;/a&gt;&lt;br class='autobr' /&gt;
7. Narcisi, B. &amp; Petit, J.R. (2022) Englacial tephras of East Antarctica. In J. Smellie, K. Panter, A. Geyer (Eds.) Volcanism in Antarctica: 200 Million Years of Subduction, Rifting and Continental Break-Up. &lt;a href=&#034;https://doi.org/10.1144/M55-2018-86&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geological Society, London, Memoirs, Vol.55, 649.&lt;/a&gt;&lt;br class='autobr' /&gt;
8. Regnault, M., Marrocchi, Y., Piralla, M., Villeneuve, J., Batanova, V., Schnuriger, N. &amp; Jacquet, E. (2022). Oxygen isotope systematics of chondrules in Rumuruti chondrites: Formation conditions and genetic link with ordinary chondrites. &lt;a href=&#034;https://doi.org/10.1111/maps.13778&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Meteoritics &amp; Planetary Science 57, 122-135.&lt;/a&gt;&lt;br class='autobr' /&gt;
9. Schnuriger, N., Cartier, C., Villeneuve, J., Batanova, V., Regnault, M. &amp; Marrocchi, Y. (2022). Spinel in CV chondrules: Investigating precursor legacy and chondrule thermal histories. Meteoritics &amp; Planetary &lt;a href=&#034;https://onlinelibrary.wiley.com/doi/10.1111/maps.13802&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Science 57, 1018-1037.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2021&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Belousov, I., Batanova, V., Sobolev, A., Savelieva, G., Danyushevsky, L., Draayers, E. (2021). Pyroxenites from mantle section of Voykar Ophiolite - Melt/peridotite reaction and crystallization in SSZ mantle. &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2021.106063&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 388, 21.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Eslami, A., Malvoisin, B., Brunet, F., Kananian, A., Bach, W., Grieco, G., Cavallo, A., &lt;br class='autobr' /&gt;
Gatta, G.D. (2021). Podiform magnetite ore(s) in the Sabzevar ophiolite (NE Iran): oceanic hydrothermal alteration of a chromite deposit. &lt;a href=&#034;https://doi.org/10.1007/s00410-021-01799-0&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Contributions to Mineralogy and Petrology, 176, 43.&lt;/a&gt;&lt;br class='autobr' /&gt;
3. Eslami, A., Malvoisin, B., Grieco, G., Aradi, L.E., Marchesi, C., Cavallo, A., Montanini, A., Borghini, G., Mathur, R., Ikehata, K., Davis, D.W., Li, Ch-H., Szab&#243;, C. (2021). Naive copper formation associated with serpentinization in the Cheshmeh-Bid ophiolite massif (Southern Iran). &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2020.105953&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos 382-383, 105953.&lt;/a&gt;&lt;br class='autobr' /&gt;
4. Jacob, J. B., Guillot, S., Rubatto, D., Janots, E., Melleton, J., Faure, M. (2021). Carboniferous high&#8208;P metamorphism and deformation in the Belledonne Massif (Western Alps). &lt;a href=&#034;https://doi.org/10.1111/jmg.12600&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Metamorphic Geology, 39, 8, 1009-1044.&lt;/a&gt;&lt;br class='autobr' /&gt;
5. Narcisi, B., Petit J.R. Englacial tephras of East Antarctica, (2021) in: Volcanism in&lt;br class='autobr' /&gt;
Antarctica: 200 Million Years of Subduction, Rifting and Continental Break-up. (eds) Smellie, J. L., Panter, K. S. and Geyer, A. &lt;a href=&#034;https://doi.org/10.1144/M55-2018-86&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geological Society, London, Memoirs, 55.&lt;/a&gt;&lt;br class='autobr' /&gt;
6. Piralla, M., Villeneuve, J., Batanova, V., Jacquet, E., Marrocchi, Y. (2021). Conditions of chondrule formation in ordinary chondrites. &lt;a href=&#034;https://doi.org/10.1016/j.gca.2021.08.007&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica et Cosmochimica Acta, 313, 295-312.&lt;/a&gt;&lt;br class='autobr' /&gt;
7. Regnault, M., Marrocchi, Y., Piralla, M., Villeneuve, J., Batanova, V., Schnuriger, N., Jacquet, E. (2021) Oxygen isotope systematics of chondrules in Rumuruti chondrites: Formation conditions and genetic link with ordinary chondrites. &lt;a href=&#034;https://doi.org/10.1111/maps.13778&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Meteoritics &amp; Planetary Science,1&#8211;14.&lt;/a&gt;&lt;br class='autobr' /&gt;
8. Somsikova, A. V., Kostitsyn, Y. A., Fedotova, A. A., Razumovskiy, A. A., Khain, E. V., Astrakhantsev, O. V., Batanova, V. G., Anosova, M. O. (2021). Late Neoprotherozoic Granitoid Magmatism of the Baikal-Muya Fold Belt, Ophiolite and Post-Ophiolite Plagiogranites. &lt;a href=&#034;https://doi.org/10.1134/S0016702921010109&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochemistry International, 59, 12-31.&lt;/a&gt;&lt;br class='autobr' /&gt;
9. Truche, L., Bourdelle, F., Salvi, S., Lefeuvre, N., Zug, A., Lloret, E. (2021) Hydrogen generation during hydrothermal alteration of peralkaline granite. &lt;a href=&#034;https://www.sciencedirect.com/science/article/abs/pii/S001670372100329X?via%3Dihub&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica et Cosmochimica Acta, 308, 42-59&lt;/a&gt;.&lt;br class='autobr' /&gt;
10. Sushchevskaya, N. M., Sobolev, A. V., Leitchenkov, G. L., Batanova, V. G., Belyatsky, B. V., Zhilkina, A. V. (2021). Role of Pyroxenite Mantle in the Formation of the Mesozoic Karoo Plume Melts: Evidence from the Western Queen Maud Land, East Antarctica. &lt;a href=&#034;https://pureportal.spbu.ru/en/publications/role-of-pyroxenite-mantle-in-the-formation-of-the-mesozoic-karoo-&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochemistry International, 59, 357-376.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2020&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Asafov, E.V., Sobolev, A.V., Batanova, V.G., Portnyagin, M.V. (2020). Chlorine in the Earth's Mantle as an Indicator of the Global Recycling of Oceanic Crust. &lt;a href=&#034;https://doi.org/10.15372/RGG2020161&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Russian Geology and Geophysics, 61, 937-950.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Airaghi, L., Bellahsen, N., Dubacq, B., Chew, D., Rosenberg, C., Janots, E., Waldner, M., Magnin, V. (2020) Pre-orogenic upper crustal softening by lower greenschist-facies metamorphic reactions in granites of the central Pyrenees. &lt;a href=&#034;https://doi.org/10.1111/jmg.12520&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Metamorphic Geology, 38, 183-204.&lt;/a&gt;&lt;br class='autobr' /&gt;
3. Barnes, C.J., Walczak, K., Janots, E., Schneider, D., Majka, J. (2020) Timing of Paleozoic Exhumation and Deformation of the High-Pressure Vestg&#1255;tabreen Complex at the Motalafjella Nunatak, Svalbard. &lt;a href=&#034;https://doi.org/10.3390/min10020125&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Minerals, 10, 125.&lt;/a&gt;&lt;br class='autobr' /&gt;
4. Hentschel, F., Janots, E., Trepmann, C.A., Magnin, V., Lanari, P. (2020) Corona formation around monazite and xenotime during greenschist-facies metamorphism and deformation. &lt;a href=&#034;https://doi.org/10.5194/ejm-32-521-2020&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Eur. J. Mineral. 32, 521&#8211;544.&lt;/a&gt; &lt;br class='autobr' /&gt;
5. Cordier, C., Coin, K., Arndt, T. N., Cartigny, P. (2020) The &#196;lgliden Ni-Cu-Au deposit: magmatic sulfides in a subduction setting. &lt;a href=&#034;https://link.springer.com/article/10.1007/s00126-019-00921-4&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Mineralium Deposita, 55, 1173-1196.&lt;/a&gt;&lt;br class='autobr' /&gt;
6. Chayka, I.F, Sobolev, A.V., Izokh, A.E., Batanova, V.G., Krasheninnikov, S.P., Chervyakovskaya, M.V., Kontonikas-Charos, A., Kutyrev, A.V., Lobastov, B.M., &amp; Chervyakovskiy, V.S. (2020). Fingerprints of kamafugite like magmas in mesosoic lamproites of the Aldan shield: evidence from olivine and olivine-hosted inclusions. &lt;a href=&#034;https://doi.org/10.3390/min10040337&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Minerals, 10, 337.&lt;/a&gt; &lt;br class='autobr' /&gt;
7. Goussin, F., Riel, N., Cordier, C., Guillot, S., Boulvais, P., Roperch, P., Replumaz, A., Schulmann, K., Dupont-Nivet, G., Rosas, F., Guo Z. (2020) Carbonated inheritance in the Eastern Tibetan lithospheric mantle: petrological evidences and geodynamic implications. &lt;a href=&#034;https://hal-insu.archives-ouvertes.fr/insu-02498157&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochemistry, Geophysics, Geosystems, 60, 957-977.&lt;/a&gt;&lt;br class='autobr' /&gt;
8. Manceau, A., Merkulova, M., Mathon, O., Glatzel, P., Murdzek, M., Batanova, V., Simionovici, A., Steinmann, S.N., Paktunc, D. (2020) The Mode of Incorporation of As(-I) and Se(-I) in Natural Pyrite Revisited. &lt;a href=&#034;https://pubs.acs.org/doi/10.1021/acsearthspacechem.9b00301&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;ACS Earth Space Chem. 4, 3, 379-390.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2019&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Airaghi, L., Janots, E., Lanari, P., de Sigoyer, J. &amp; Magnin, V. (2019). Allanite Petrochronology in Fresh and Retrogressed Garnet-Biotite Metapelites from the Longmen Shan (Eastern Tibet). &lt;a href=&#034;https://doi.org/10.1093/petrology/egy109&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Petrology, 60, 151-176.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Batanova, V.G., Thompson, J.M., Danyushevsky, L.V., Portnyagin, M.V., Garbe-Sch&#246;nberg, D., Hauri, E., Kimura J-I., Chang Q., Senda R., Goemann K., Chauvel C., Campillo S., Ionov D.A. and Sobolev A.V. (2019). New Olivine reference material for in-situ microanalysis. &lt;a href=&#034;https://doi.org/10.1111/ggr.12266&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geostandards and Geoanalytical Research, v. 43, p 453-473.&lt;/a&gt;&lt;br class='autobr' /&gt;
3. Guillot, S., Goussin, F., Airaghi, L., Replumaz, A., de Sigoyer, J. &amp; Cordier, C. (2019). How and When Did the Tibetan Plateau Grow? &lt;a href=&#034;https://doi.org/10.15372/RGG2019126&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Russian Geology and Geophysics 60, 957-977.&lt;/a&gt;&lt;br class='autobr' /&gt;
4. Kaduri, M., Gratier, J. P., Lasserre, C., Cakir, Z. &amp; Renard, F. (2019). Quantifying the Partition Between Seismic and Aseismic Deformation Along Creeping and Locked Sections of the North Anatolian Fault, Turkey. &lt;a href=&#034;https://doi.org/10.1007/s00024-018-2027-2&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Pure and Applied Geophysics, 176, 1293-1321.&lt;/a&gt;&lt;br class='autobr' /&gt;
5. Marrocchi, Y., Euverte, R., Villeneuve, J., Batanova, V., Welsch, B., Ferriere, L. &amp; Jacquet, E. (2019). Formation of CV chondrules by recycling of amoeboid olivine aggregate-like precursors. &lt;a href=&#034;https://doi.org/10.1016/j.gca.2018.12.038&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica Et Cosmochimica Acta, 247, 121-141.&lt;/a&gt;&lt;br class='autobr' /&gt;
6. Mazza, S. E., Gazel, E., Bizimis, M., Moucha, R., Beguelin, P., Johnson, E. A., McAleer, R. J. &amp; Sobolev, A. V. (2019). Sampling the volatile-rich transition zone beneath Bermuda. &lt;a href=&#034;https://www.nature.com/articles/s41586-019-1183-6&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Nature, 569, 571, 398.&lt;/a&gt;&lt;br class='autobr' /&gt;
7. Merkulova, M., Murdzek, M., Mathon, O., Glatzel, P., Batanova, V. &amp; Manceau, A. (2019). Evidence for syngenetic micro-inclusions of As3+- and As5+-containing Cu sulfides in hydrothermal pyrite. &lt;a href=&#034;https://pubs.geoscienceworld.org/msa/ammin/article-abstract/104/2/300/568556/Evidence-for-syngenetic-micro-inclusions-of-As3&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;American Mineralogist, 104, 300-306.&lt;/a&gt;&lt;br class='autobr' /&gt;
8. Merkulova, M., Mathon, O., Glatzel, P., Rovezzi, M., Batanova, V., Marion, P., Boiron, M. C. &amp; Manceau, A. (2019). Revealing the Chemical Form of &#034;Invisible&#034; Gold in Natural Arsenian Pyrite and Arsenopyrite with High Energy-Resolution X-ray Absorption Spectroscopy. &lt;a href=&#034;https://doi.org/10.1021/acsearthspacechem.9b00099&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Acs Earth and Space Chemistry, 3, 1905-1914.&lt;/a&gt;&lt;br class='autobr' /&gt;
9. Narcisi, B., Petit, J. R., Delmonte, B., Batanova, V. &amp; Savarino, J. (2019). Multiple sources for tephra from AD 1259 volcanic signal in Antarctic ice cores. &lt;a href=&#034;https://doi.org/10.1016/j.quascirev.2019.03.005&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Quaternary Science Reviews, 210, 164-174.&lt;/a&gt;&lt;br class='autobr' /&gt;
10. Pilitsyna, A. V., Tretyakov, A. A., Degtyarev, K. E., Salnikova, E. B., Kotov, A. B., Kovach, V. P., Wang, K. L., Batanova, V. G., Plotkina, Y. V., Tolmacheva, E. V., Ermolaev, B. V. &amp; Lee, H. Y. (2019). Early Palaeozoic metamorphism of Precambrian crust in the Zheltau terrane (Southern Kazakhstan; Central Asian Orogenic belt): P-T paths, protoliths, zircon dating and tectonic implications. &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2018.10.033&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 324, 115-140.&lt;/a&gt;&lt;br class='autobr' /&gt;
11. Sobolev, A. V., Asafov, E. V., Gurenko, A. A., Arndt, N. T., Batanova, V. G., Portnyagin, M. V., Garbe-Schonberg, D., Wilson, A. H. &amp; Byerly, G. R. (2019). Deep hydrous mantle reservoir provides evidence for crustal recycling before 3.3 billion years ago. &lt;a href=&#034;https://doi.org/10.1038/s41586-019-1399-5&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Nature, 571, 555-559.&lt;/a&gt;&lt;br class='autobr' /&gt;
12. Sushchevskaya, N. M., Shishkina, T. A., Portnyagin, M. V., Batanova, V. G. &amp; Belyatsky, B. V. (2019). Long-Lasting Influence of the Discovery Plume on Tholeiitic Magmatism in the South Atlantic: Data on Basalts Recovered by Hole 513a, DSDP Leg 71. &lt;a href=&#034;https://doi.org/10.1134/s0016702919020083&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochemistry International, 57, 113-133.&lt;/a&gt;&lt;br class='autobr' /&gt;
13. Sushchevskaya, N. M., Belyatsky, B. V., Leitchenkov, G. L., Batanova, V. G. &amp; Sobolev, A. V. (2019). Geochemical Characteristics of Jurassic Plume Magmatism in Ahlmannryggen Massif (Queen Maud Land, East Antarctica). &lt;a href=&#034;https://doi.org/10.1134/s1028334x19050076&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Doklady Earth Sciences, 486, 529-532.&lt;/a&gt;&lt;br class='autobr' /&gt;
14. Schwartz S., Gautheron, C., Ketcham R., Brunet F., Pinna-Jamme R., Haurine F, Agranier A., Gu&#233;guen B., Riel, N., 2019. Unraveling exhumation history of ophiolite using magnetite (U-Th-Sm)/He thermometer. &lt;a href=&#034;https://doi.org/10.1016/j.epsl.2020.116359&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Earth and Planetary Science Letters, 543.&lt;/a&gt;&lt;br class='autobr' /&gt;
15. Tretyakov, A. A., Pilitsyna, A. V., Degtyarev, K. E., Salnikova, E. B., Kovach, V. P., Lee, H. Y., Batanova, V. G., Wang, K. L., Kanygina, N. A. &amp; Kovalchuk, E. V. (2019). Neoproterozoic granitoid magmatism and granulite metamorphism in the Chu-Kendyktas terrane (Southern Kazakhstan, Central Asian Orogenic Belt): Zircon dating, Nd isotopy and tectono-magmatic evolution. &lt;a href=&#034;https://doi.org/10.1016/j.precamres.2019.105397&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Precambrian Research, 332, 28.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2018&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Airaghi, L., de Sigoyer, Guillot, S., Robert, A., Warren, C.J., Deldicque, D. (2018). The Mesozoic along-strike tectono-metamorphic segmentation of Longmen Shan (eastern Tibetan plateau). &lt;a href=&#034;https://doi.org/10.1029/2018TC005005&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Tectonics, v 37, p 4655-4678.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Baecker, B., Ott, U., Cordier, C., Folco, L., Trieloff, M., van Ginneken, M., Rochette, P. (2018). Noble gases in micrometeorites from the Transantarctic Mountains. &lt;a href=&#034;https://doi.org/10.1016/j.gca.2018.08.027&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica et Cosmochimica Acta, 242, 266-297.&lt;/a&gt;&lt;br class='autobr' /&gt;
3. Cordier C., Baecker B., Ott U., Folco L., Trieloff M. (2018). A new type of oxidized and pre-irradiated micrometeorite. &lt;a href=&#034;https://doi.org/10.1016/j.gca.2018.04.010&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica et Cosmochimica Acta, 233, 135-158.&lt;/a&gt;&lt;br class='autobr' /&gt;
4. Pilitsyna, A.V., Tretyakov, A.A., Degtyarev, K.E., Alifirova, T.A., Batanova, V., Cuthbert, S.J., Kovalchuk, E.B., Ermolaev, B.V. (2018). Multi-stage metamorphic evolution and protolith reconstruction of spinel-bearing and symplectite-bearing ultramafic rocks in the Zheltau massif, Southern Kazakhstan (Central Asian Orogenic Belt). &lt;a href=&#034;https://doi.org/10.1016/j.gr.2018.06.005&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Gondwana Research, 64, 11-34.&lt;/a&gt;&lt;br class='autobr' /&gt;
5. Prigent, C., Agard, P., Guillot, S., Godard, M., Dubacq, B. (2018). Mantle wedge deformation during subduction infancy: evidence from the base of the Semail ophiolitic mantle. &lt;a href=&#034;https://doi.org/10.1093/petrology/egy090&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Petrology, 59, 11, 2061-2092.&lt;/a&gt; (thanks to V. Batanova and V. Magnin)&lt;br class='autobr' /&gt;
6. Manceau, A., Merkulova, M., Murdzek, M., Batanova, V., Baran, R., Glatzel, P., Saikia, B.K., Paktunc, D. Lefticariu L. (2018). Chemical Forms of Mercury in Pyrite: Implications for Predicting Mercury Releases in Acid Mine Drainage Settings. &lt;a href=&#034;https://doi.org/10.1021/acs.est.8b02027&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Environmental Science &amp; Technology, 52(18),10286-10296.&lt;/a&gt;&lt;br class='autobr' /&gt;
7. Sobolev, S.V., Sobolev, A.V., Tomilenko, A.A., Kuz'min, D.V., Grakhanov, S.A., Batanova, V.G., Logvinova, A.M., Bul'bak,T.A., Kostrovitskii, S.I., Yakovlev, D.A., Fedorova, E.N., Anastasenko, G.F., Nikolenko, E.I., Tolstov, A.V., Reutskii, V.N. (2018). Prospects of search for diamondiferous kimberlites in the northeastern Siberian Platform. &lt;a href=&#034;https://doi.org/10.1016/j.rgg.2018.09.012&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Russian Geology and Geophysics, 59(10),1365-1379.&lt;/a&gt;&lt;br class='autobr' /&gt;
8. Chayka IF, Izokh AE, Sobolev AV, Batanova VG. (2018). Low-Titanium Lamproites of the Ryabinoviy Massif (Aldan Shield): Crystallization Conditions and Lithospheric Source. &lt;a href=&#034;https://doi.org/10.1134/s1028334x18080020&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Doklady Earth Sciences, 481(2),1008-1012.&lt;/a&gt;&lt;br class='autobr' /&gt;
9. Marrocchi Y., Villeneuve J., Batanova V., Piani L. and Jacquet E. (2018). Oxygen isotopic diversity of chondrule precursors and the nebular origin of chondrules. &lt;a href=&#034;https://doi.org/10.1016/j.epsl.2018.05.042&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;EPSL, 496, 132-141.&lt;/a&gt;&lt;br class='autobr' /&gt;
10. Airaghi, L, Warren, C.J., de Sigoyer, J., Lanari, P., Magnin, V. (2018). Influence of dissolution/repricipatation reactions on metamorphic greenschist to amphibolite-facies mica 40Ar/39Ar ages in the Longmen Shan (eastern Tibet). &lt;a href=&#034;https://doi-org.insu.bib.cnrs.fr/10.1111/jmg.12420&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Metamorphic Geology.&lt;/a&gt;&lt;br class='autobr' /&gt;
11. Gazel E., Treka J., Bizimis M., Sobolev A., Batanova V., Class C., Jicha B. (2018). Long-lived source heterogeneities in the Galapagos mantle plume, G-Cubed. &lt;a href=&#034;https://doi.org/10.1029/2017GC007338&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochemistry, Geophysics, Geosystems, 19, 8, 2764-2779.&lt;/a&gt;&lt;br class='autobr' /&gt;
12. Loury C., Rolland Y., Lanari, P., Guillot S., Bosch D., Ganino C., Jourdon, A., Petit C., Gallet S., Moni&#233; P., Riel N. (2018). Permian charnockites in Pobeda area : implications for Tarim mantle plume activity and HT metamorphism in the South Tien Shan range. &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2018.01.025&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 304-307, 135-154.&lt;/a&gt;&lt;br class='autobr' /&gt;
13. Loury C., Rolland Y., Guillot S, Ganino C., Lanari P., Ganimo C., Melis R., Jourdon A., Petit C., Beyssac O., Gallet S., Moni&#233; P. (2018). Tecnonometamorphic evolution of the Atbashi high-pressure units (Kyrgyz CAOB, Tien Shan): implications for the closure of the Turkestan Ocean and continental subduction-exhumation of the South Kazakh continental margin. &lt;a href=&#034;https://doi-org.insu.bib.cnrs.fr/10.1111/jmg.12423&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Metamoprphic Geology.&lt;/a&gt; &lt;br class='autobr' /&gt;
14. Anne-Marie Boullier, Odile Robach, Beno&#238;t Ildefonse, Fabrice Barou, David Mainprice, Tomoyuki Ohtani, and Koichiro Fujimoto. (2018). High stresses stored in fault zones: example of the Nojima fault (Japan). &lt;a href=&#034;https://doi.org/10.5194/se-9-505-2018&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Solid Earth (SE), 9, 505-529.&lt;/a&gt; &lt;br class='autobr' /&gt;
15. Asafov E.V., Sobolev A.V., Gurenko A.A., Arndt N.T., Batanova V.G., Portnyagin M.V., Garbe-Sch&#246;nberg D., Krasheninnikov S.P. (2018). Belingwe komatiites (2.7 Ga) originate from a plume with moderate water content, as inferred from inclusions in olivine. &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2017.11.002&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chemical Geology, 478, 39-59.&lt;/a&gt;&lt;br class='autobr' /&gt;
16. Batanova V.G., Sobolev A.V. and Magnin V. Trace element analysis by EPMA in geosciences: detection limit, accuracy and precision. (2018). &lt;a href=&#034;https://doi.org/10.1088/1757-899X/304/1/012001&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;IOP Conference Series: Materials Science and Engineering, 304 (1), 012001.&lt;/a&gt;&lt;br class='autobr' /&gt;
17. Janots, E., Austrheim, H., Spandler, C., Hammerli, J., Trepmann, C.A., Berndt, J., Magnin, V., Kemp, A.I.S. (2018). Rare earth elements and Sm-Nd isotope redistribution in apatite and accessory minerals in retrogressed lower crust material (Bergen Arcs, Norway). &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2017.10.007&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chem. Geol. 484, 120-135.&lt;/a&gt;&lt;br class='autobr' /&gt;
18. Grand'Homme, A., Janots, E., Seydoux-Guillaume, A.M., Guillaume, D., Magnin, V., H&#246;velmann, J., H&#246;schen, C., Boiron, M.C. (2018). Mass transport and fractionation during monazite alteration by anisotropic replacement. &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2017.10.008&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chem. Geol. 584, 51-68.&lt;/a&gt;&lt;br class='autobr' /&gt;
19. Pilitsyna A.V., Tretyakov A.A., Degtyarev K.E., Simon J., Cuthbert S.J., Batanova V.G., Kovalchuk E.V. (2018). Eclogites and garnet clinopyroxenites in the Anrakhai Complex, Central Asian Orogenic Belt, Southern Kazakhstan: P-T evolution, protoliths and some geodynamic implications. &lt;a href=&#034;https://doi.org/10.1016/j.jseaes.2017.03.027&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Asian Earth Sciences, 153, 325-345.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2017&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Airaghi L., Lanari P., de Sigoyer J., Guillot S. (2017). Microstructural vs compositional preservation and preudomorphic replacement of muscovite in deformed metapelites from the Longmen Shan (Sichuan, China). &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2017.03.013&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, v282-283, 262-280.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Airaghi L., de Sigoyer J., Lanari P., Vidal O., Guillot S., Monie P., Sautter B., Xibin Tan. (2017). Total exhumation across the Beichuan fault in the Longmen Shan, Sichuan, (eastern Tibetan plateau, China): constraints from petrology and thermobarometry. &lt;a href=&#034;https://doi.org/10.1016/j.jseaes.2017.04.003&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Asian Eath Sciences, 140, 108-121.&lt;/a&gt;&lt;br class='autobr' /&gt;
3. Batanova V.G., Sobolev A.V., Magnin V. (2017). Trace element analysis in EPMA: current state and perspectives. In Book of Tutorials and Abs. EMAS/IUMAS, Modern developments and applications in microbeam analysis, invited lecture, 55-73.&lt;br class='autobr' /&gt;
4. Cordier C., Sauzeat L., Arndt N., Boullier, A.-M., Batanova V., Barou F. (2017). Quantitative modelling of the apparent decoupling of Mg# and Ni in kimberlitic olivine margins: a reply to the comment on Cordier et al. (2015) by Moore A. &lt;a href=&#034;https://doi.org/10.1093/petrology/egx013&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Petrology, 58, 2, 391-393&lt;/a&gt;&lt;br class='autobr' /&gt;
5. Di Rosa, M., De Giorgi, A., Marroni, M., &amp; Vidal, O. (2017). Syn-convergence exhumation of continental crust: evidence from structural and metamorphic analysis of the Monte Cecu area, Alpine Corsica (Northern Corsica, France). &lt;a href=&#034;https://doi.org/10.1002/gj.2857&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geological Journal, 52, 6, 919&#8211;937.&lt;/a&gt;&lt;br class='autobr' /&gt;
6. Kaduri M., Gratier J-P., Renard F., Cakire Z., Lasserre C. (2017). The implication of fault zone transformation on fault aseismic creep: example from the North Anatolian Fault, Turkey. &lt;a href=&#034;https://doi.org/10.1002/2016JB013803&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;JGR Solid Earth, 122, 6, 4208-4236.&lt;/a&gt; (Thanks to V. Magnin and V. Batanova)&lt;br class='autobr' /&gt;
7. Krasheninnikov S.P., Sobolev A.V., Batanova V.G., Kargaltsev A.A., Borisov A.A. (2017). Experimental test of olivine-melt equilibrium models at high temperature. &lt;a href=&#034;http://dx.doi.org/10.1134/S1028334X17080153&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Doklady Russian Academy of Sciences, 475, 919-922.&lt;/a&gt;&lt;br class='autobr' /&gt;
8. Merkulova, M. V., Munoz, M., Brunet, F., Vidal, O., Hattori, K., Vantelon, D., et al. (2017). Experimental insight into redox transfer by iron- and sulfur-bearing serpentinite dehydration in subduction zones. &lt;a href=&#034;https://doi.org/10.1016/j.epsl.2017.09.009&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Earth And Planetary Science Letters, 479, 133&#8211;143.&lt;/a&gt;&lt;br class='autobr' /&gt;
9. Trela, J., Gazel, E., Moore, L., Sobolev, A, Bizimis, M., Jicha B, Batanova V. (2017). The hottest lavas of the Phanerozoic and the survival of deep Archean reservoirs. &lt;a href=&#034;http://dx.doi.org/10.1038/ngeo2954&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Nature Geosciences, 10, 451-456.&lt;/a&gt;&lt;br class='autobr' /&gt;
10. Zamboni, D., Trela, J., Gazel E., Sobolev A.V., Cannatelli C., Lucchi F., Batanova V.G., De Vivo B. (2017). New insights into the Aeolian Islands and other arc source compositions from high-precision olivine chemistry. &lt;a href=&#034;https://repositorio.uchile.cl/bitstream/handle/2250/168782/New-insights-into-the-Aeolian-Islands.pdf?sequence=1&amp;isAllowed=y&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 272-273, 185-191.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2016&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Fazio, A., D'Orazio, M., Cordier, C., &amp; Folco, L. (2016). Target-projectile interaction during impact melting at Kamil Crater, Egypt. &lt;a href=&#034;https://doi.org/10.1016/j.gca.2016.02.003&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica et Cosmochimica Acta, 180, 33&#8211;50.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Cordier C., Sauzeat L., Arndt N., Boullier, A.-M., Batanova V., Barou F. (2016). The Geochemical Complexity of Kimberlite Rocks and their Olivine Populations: a Reply to the Comment on Cordier et al. (2015) by Andrea Giuliani &amp; Stephen F. Foley. &lt;a href=&#034;https://doi.org/10.1093/petrology/egw027&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Petrology, 57 , 927-931.&lt;/a&gt;&lt;br class='autobr' /&gt;
3. Grand'Homme A., Janots E., Seydoux-Guillaume A-M., Guillaume D., Bosse V., Magnin V. (2016). Partial resetting of the U-Th-Pb systems in experimentally altered monazite: Nanoscale evidence of incomplete replacement. &lt;a href=&#034;https://doi.org/10.1130/G37770.1&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geology, 44, 6, 431-434.&lt;/a&gt;&lt;br class='autobr' /&gt;
4. Savelieva G.N., Batanova V.G., Sobolev A.V. (2016). Pyroxene&#8211;Cr-spinel exsolution in mantle lherzolites of the Syum-Keu ophiolite massif (Arctic Urals). &lt;a href=&#034;https://doi.org/10.1016/j.rgg.2015.12.001&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Russian Geology and Geophysics, 57, 10, 1419&#8211;1436.&lt;/a&gt;&lt;br class='autobr' /&gt;
5. Merkulova M., Munoz M., Vidal O., Brunet F. (2016). Role of iron content on serpentinite dehydration depth in subduction zones: Experiments and thermodynamic modeling. &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2016.09.007&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 264, 441-452.&lt;/a&gt; &lt;br class='autobr' /&gt;
6. Delavault H., Chauvel C., Thomassot E., Colin W. Devey C.W., Dazas B. (2016). Sulfur and lead isotopic evidence of relic Archean sediments in the Pitcairn mantle plume. &lt;a href=&#034;https://doi.org/10.1073/pnas.1523805113&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;PNAS, 113, 12952&#8211;12956.&lt;/a&gt;&lt;br class='autobr' /&gt;
7. Lafay R., Montes-Hernandez G., Janots E., Mu&#241;oz M., Auzende A-L. Gehin A., Chiriac R., Proux O. (2016). Experimental investigation of As, Sb and Cs behaviour during olivine serpentinization in hydrothermal alkaline systems. &lt;a href=&#034;https://doi.org/10.1016/j.gca.2016.02.014&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Geochimica et Cosmochimica Acta, 179, 177-202.&lt;/a&gt;&lt;br class='autobr' /&gt;
8. Loury, C., Rolland, Y., Cenki-Tok, B., Lanari, P., Guillot, S. (2016). Late Paleozoic evolution of the South Tien Shan: Insights from P-T estimates and allanite geochronology on retrogressed eclogites (Chatkal range, Kyrgyzstan). &lt;a href=&#034;https://doi.org/10.1016/j.jog.2015.06.005&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Geodynamics, 96, 62-80.&lt;/a&gt;&lt;br class='autobr' /&gt;
9. Margirier, A., Audin, L., Robert, X., Herman, F., Ganne, J., Schwartz, S. (2016). Time and mode of exhumation of the Cordillera Blanca batholith (Peruvian Andes). &lt;a href=&#034;https://doi.org/10.1002/2016JB013055&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. Geophys. Res. Solid Earth, 121, 6235-6249.&lt;/a&gt;&lt;br class='autobr' /&gt;
10. Narcisi B., Petit J.R., Langone A., Stenni B. (2016). A new Eemian record of Antarctic tephra layers retrieved from the Talos Dome ice core (Northern Victoria Land). &lt;a href=&#034;https://doi.org/10.1016/j.gloplacha.2015.12.016&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Global and Planetary Change, 137, 69-78.&lt;/a&gt;&lt;br class='autobr' /&gt;
11. Sobolev A.V., Asafov E.V., Gurenko A.A., Arndt N.T., Batanova V.G., Portnyagin M.V., Garbe-Sch&#246;nberg D., Krasheninnikov S.P. (2016). Komatiites reveal an Archean hydrous deep-mantle reservoir. &lt;a href=&#034;https://doi.org/10.1038/nature17152&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Nature, 531, 628- 632.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2015&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Loury, C., Rolland, Y., Guillot, S., Mikolaichuk, A. V, Lanari, P., Bruguier, O., Bosch, D. (2015). Crustal-scale structure of South Tien Shan: implications for subduction polarity and Cenozoic reactivation, in: Brunet, M.F., McCann, T., Sobel, E.R. (Eds.), Geological Evolution of Central Asian Basins and the Western Tien-Shan Range. &lt;a href=&#034;https://www.researchgate.net/publication/279886699_Crustal-scale_structure_of_South_Tien_Shan_Implications_for_subduction_polarity_and_Cenozoic_reactivation&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;The Geological Society of London, 427.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Cordier C., Sauzeat L., Arndt N., Boullier, A.-M., Batanova V., Barou F. (2015). Metasomatism of the lithospheric mantle immediately precedes kimberlite eruption: new evidence from olivine composition and microstructures. &lt;a href=&#034;https://doi.org/10.1093/petrology/egv054&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;J. of Petrology, 56, 1775-1796.&lt;/a&gt; &lt;br class='autobr' /&gt;
3. Batanova, V.G., Sobolev, A.V., Kuzmin, D.V. (2015). Trace element analysis of olivine: High precision analytical method for JEOL JXA-8230 electron probe microanalyser. &lt;a href=&#034;https://doi.org/10.1016/j.chemgeo.2015.10.042&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Chemical Geology, 419, 149-157.&lt;/a&gt;&lt;br class='autobr' /&gt;
4. Delavault, H., Chauvel, C., Sobolev, A., Batanova, V. (2015). Combined petrological, geochemical and isotopic modeling of a plume source: Example of Gambier Island, Pitcairn chain. &lt;a href=&#034;https://doi.org/10.1016/j.epsl.2015.06.013&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Earth and Planetary Science Letters, 426, 23-35.&lt;/a&gt;&lt;br class='autobr' /&gt;
5. Sobolev, N.V., Sobolev, A. V., Tomilenko, A. A., Batanova, V. G., Tolstov, A.V., Logvinova, A. M., Kuz'min, D. V. (2015). Unique compositional peculiarities of olivine phenocrysts from the post flood basalt diamondiferous Malokuonapskaya kimberlite pipe, Yakutia. &lt;a href=&#034;https://doi.org/10.1134/S1028334X15080164&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Doklady Earth Sciences, 463, 2, 828-832.&lt;/a&gt;&lt;br class='autobr' /&gt;
6. Sobolev, N.V., Sobolev, A. V., Tomilenko, A. A., Kovyazin, S. V., Batanova, V. G., Kuz'min, D. V. (2015). Paragenesis and complex zoning of olivine macrocrysts from unaltered kimberlite of the Udachnaya-East pipe, Yakutia: relationship with the kimberlite formation conditions and evolution. &lt;a href=&#034;https://doi.org/10.1016/j.rgg.2015.01.019&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Russian Geology and Geophysics, 56, 1-2, 260-279.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;2014&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;1. Fazio A., Folco L., D'Orazio M., Frezzotti M. L., Cordier C. (2014). Shock metamorphism and impact melting in small impact craters on Earth: Evidence from Kamil Crater, Egypt. &lt;a href=&#034;https://doi.org/10.1111/maps.12385&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Meteoritics and Planetary Science, 49, 2175&#8211;2200.&lt;/a&gt;&lt;br class='autobr' /&gt;
2. Pelleter A.-Z., Caroff M., Cordier C., Bachelery P., Nehlig P., Debeuf D., Arnaud N. (2014). Melilite-bearing lavas in Mayotte (France): an insight into the mantle source below the Comores. &lt;a href=&#034;https://doi.org/10.1016/j.lithos.2014.09.012&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;Lithos, 208-209, 281-297.&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;&lt;a href=&#034;https://www.isterre.fr/english/platforms-services-1235/isterre-microanalytical-platform-imap&#034;&gt;BACK&lt;/a&gt;&lt;/p&gt;
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<item xml:lang="en">
		<title>Photo gallery Electron microprobe</title>
		<link>https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/article/photo-gallery-electron-microprobe.html</link>
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		<dc:date>2021-12-19T09:47:36Z</dc:date>
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		<dc:creator>Olga DIMITRIEV</dc:creator>



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&lt;p&gt;ISTerre electron microprobe laboratory: 2012-2021 years. EPMA Jeol JXA 8230 &lt;br class='autobr' /&gt; &lt;br class='autobr' /&gt;
16 July 2021. Farwell, our good old friend Jeol JXA 8230! &lt;br class='autobr' /&gt; &lt;br class='autobr' /&gt;
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&lt;p&gt;&lt;strong&gt;ISTerre electron microprobe laboratory: 2012-2021 years. EPMA Jeol JXA 8230&lt;/strong&gt;&lt;/p&gt;
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&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;div class='spip_document_11556 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_4429-2-3.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/img_4429-2-3-93a55.jpg?1789506427' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;16 July 2021. Farwell, our good old friend Jeol JXA 8230!&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;
&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;div class='spip_document_13537 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/1_epma_new_img_8532-4.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/1_epma_new_img_8532-4-11508.jpg?1789506427' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;The new IMAP EPMA laboratory since 2022.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;&lt;div class='spip_document_11564 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_5223-4-2-r90.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH667/img_5223-4-2-r90-4db0f.jpg?1789506427' width='500' height='667' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;Infrastructure: Air conditioning system for EPMA lab featuring stable temperature better than &#177; 0.5&#176;C and relative humidity better than &#177; 5%.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;
&lt;p&gt;&lt;a href=&#034;https://www.isterre.fr/english/platforms-services-1235/isterre-microanalytical-platform-imap/&#034;&gt;BACK&lt;/a&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;&lt;/div&gt;
		
		</content:encoded>


		

	</item>
<item xml:lang="en">
		<title>Photos gallery LIBS&#8211;LA&#8211;ICP&#8211;MS laboratory</title>
		<link>https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/article/photos-gallery-libs-la-icp-ms-laboratory.html</link>
		<guid isPermaLink="true">https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/article/photos-gallery-libs-la-icp-ms-laboratory.html</guid>
		<dc:date>2021-12-19T09:46:23Z</dc:date>
		<dc:format>text/html</dc:format>
		<dc:language>en</dc:language>
		<dc:creator>Olga DIMITRIEV</dc:creator>



		<description>
&lt;p&gt;_ &lt;br class='autobr' /&gt; Equipment hall with the air quality of ISO-7 and climate control: Temperature &#177;0.2oC, Relative Humidity &#177; 2%. The equipment present: Applied Spectra Laser RESOluitionSE with LIBS, Triple Quadrupole ICP-MS Agilent 8900, Multi-Collector ICP-MS Thermo Fisher Scientific Neptune XT and gas lines of numerous ultra-pure gases. &lt;br class='autobr' /&gt; Operation hall to control and run Tandem LIBS&#8211;LA&#8211;ICP&#8211;MS system. Additional equipment: Raman microscope HORIBA Labram Soleil. Climate control: Air ISO-8, Temperature (&#8230;)&lt;/p&gt;


-
&lt;a href="https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/" rel="directory"&gt;ISTerre MicroAnalytical Platform IMAP&lt;/a&gt;


		</description>


 <content:encoded>&lt;div class='rss_texte'&gt;&lt;p&gt;_&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;div class='spip_document_11558 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_5197-1-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/img_5197-1-2-9a468.jpg?1789506427' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;Equipment hall with the air quality of ISO-7 and climate control: Temperature &#177;0.2&lt;sup&gt;o&lt;/sup&gt;C, Relative Humidity &#177; 2%. The equipment present: Applied Spectra Laser RESOluitionSE with LIBS, Triple Quadrupole ICP-MS Agilent 8900, Multi-Collector ICP-MS Thermo Fisher Scientific Neptune XT and gas lines of numerous ultra-pure gases.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;
&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;div class='spip_document_11559 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_5105-2-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/img_5105-2-2-6f3ea.jpg?1789506427' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;Operation hall to control and run Tandem LIBS&#8211;LA&#8211;ICP&#8211;MS system. Additional equipment: Raman microscope HORIBA Labram Soleil. Climate control: Air ISO-8, Temperature &#177;0.5&lt;sup&gt;o&lt;/sup&gt;C, Relative Humidity &#177; 5%.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;
&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;div class='spip_document_11560 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_5202-3-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/img_5202-3-2-e5bad.jpg?1789506427' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;Infrastructure: Heating Ventilation Air Conditioning system (HVAC), hoods and pure nitrogen generator for laser purging are situated on the next floor over equipment and operation halls.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;
&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;div class='spip_document_11561 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_5204-4-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/img_5204-4-2-85e76.jpg?1789506427' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;Infrastructure: pure nitrogen generator, HVAC and hoods control units. &lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;
&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;div class='spip_document_11562 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_5214-5-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/img_5214-5-2-b053b.jpg?1789506427' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;External infrastructure: Electrical generator to keep a laboratory on power in the electricity shutdown, extra pure liquid Ar tank and extra pure He and N2 gas lines.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;&lt;div class='spip_document_11583 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/thumbnail_img_5424_1_.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/thumbnail_img_5424_1_-afdb1.jpg?1789506427' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;25 January 2022. Installation of Applied Spectra LIBS coupled with excimer laser has started.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;
&lt;p&gt;&lt;a href=&#034;https://www.isterre.fr/english/platforms-services-1235/isterre-microanalytical-platform-imap/&#034;&gt;BACK&lt;/a&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;&lt;/div&gt;
		
		</content:encoded>


		

	</item>
<item xml:lang="fr">
		<title>Galerie de photos Laboratoire LA-ICP-MS</title>
		<link>https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/article/galerie-de-photos-laboratoire-la-icp-ms.html</link>
		<guid isPermaLink="true">https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/article/galerie-de-photos-laboratoire-la-icp-ms.html</guid>
		<dc:date>2021-12-17T18:06:03Z</dc:date>
		<dc:format>text/html</dc:format>
		<dc:language>fr</dc:language>
		<dc:creator>Olga DIMITRIEV</dc:creator>



		<description>
&lt;p&gt;Salle d'&#233;quipement avec la qualit&#233; d'air de l'ISO-7 et le contr&#244;le du climat : Temp&#233;rature &#177;0.2oC, Humidit&#233; relative &#177; 2%. L'&#233;quipement pr&#233;sent : Applied Spectra Laser RESOluitionSE avec LIBS, Triple Quadrupole ICP-MS Agilent 8900, Multi-Collector ICP-MS Thermo Fisher Scientific Neptune XT et lignes de gaz de nombreux gaz ultra-purs. &lt;br class='autobr' /&gt;
Salle des op&#233;rations pour contr&#244;ler et faire fonctionner le syst&#232;me LIBS-LA-ICP-MS en tandem. &#201;quipement suppl&#233;mentaire : Microscope Raman HORIBA Labram (&#8230;)&lt;/p&gt;


-
&lt;a href="https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/" rel="directory"&gt;Plateforme MicroAnalytique ISTerre IMAP&lt;/a&gt;


		</description>


 <content:encoded>&lt;div class='rss_texte'&gt;&lt;div class='spip_document_11539 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_5197-1.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/img_5197-1-34a3a.jpg?1789506427' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;Salle d'&#233;quipement avec la qualit&#233; d'air de l'ISO-7 et le contr&#244;le du climat : Temp&#233;rature &#177;0.2&lt;sup&gt;o&lt;/sup&gt;C, Humidit&#233; relative &#177; 2%. L'&#233;quipement pr&#233;sent : Applied Spectra Laser RESOluitionSE avec LIBS, Triple Quadrupole ICP-MS Agilent 8900, Multi-Collector ICP-MS Thermo Fisher Scientific Neptune XT et lignes de gaz de nombreux gaz ultra-purs.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;&lt;div class='spip_document_11540 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_5105-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/img_5105-2-feaaf.jpg?1789506427' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;Salle des op&#233;rations pour contr&#244;ler et faire fonctionner le syst&#232;me LIBS-LA-ICP-MS en tandem. &#201;quipement suppl&#233;mentaire : Microscope Raman HORIBA Labram Soleil. Contr&#244;le du climat : Air ISO-8, Temp&#233;rature &#177;0.5&lt;sup&gt;o&lt;/sup&gt;C, Humidit&#233; relative &#177; 5%.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;&lt;div class='spip_document_11541 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_5202-3.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/img_5202-3-dcb49.jpg?1789506427' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;Infrastructure : Le syst&#232;me de chauffage, de ventilation et de climatisation (HVAC), les hottes et le g&#233;n&#233;rateur d'azote pur pour la purge des lasers sont situ&#233;s &#224; l'&#233;tage sup&#233;rieur, au-dessus des salles d'&#233;quipement et d'exploitation.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;&lt;div class='spip_document_11542 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_5204-4.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/img_5204-4-096ff.jpg?1789506427' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;Infrastructure : g&#233;n&#233;rateur d'azote pur, unit&#233;s de contr&#244;le HVAC et hottes.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;&lt;div class='spip_document_11543 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_5214-5.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/img_5214-5-a17aa.jpg?1789506427' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;Infrastructure externe : G&#233;n&#233;rateur &#233;lectrique pour maintenir un laboratoire sous tension en cas d'arr&#234;t de l'&#233;lectricit&#233;, r&#233;servoir d'Ar liquide extra pur et conduites de gaz He et N2 extra pur.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;&lt;div class='spip_document_11584 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/thumbnail_img_5424_1_-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/thumbnail_img_5424_1_-2-6ce4b.jpg?1789506427' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;25 janvier 2022. L'installation du Applied Spectra LIBS coupl&#233; au laser excimer a commenc&#233;.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;
&lt;p&gt;&lt;a href=&#034;https://www.isterre.fr/french/services-plateformes/plateforme-microanalytique-isterre-imap/&#034;&gt;BACK&lt;/a&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;&lt;/div&gt;
		
		</content:encoded>


		

	</item>
<item xml:lang="fr">
		<title> Galerie de photos Microsonde &#233;lectronique</title>
		<link>https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/article/galerie-de-photos-microsonde-electronique.html</link>
		<guid isPermaLink="true">https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/article/galerie-de-photos-microsonde-electronique.html</guid>
		<dc:date>2021-12-17T17:20:36Z</dc:date>
		<dc:format>text/html</dc:format>
		<dc:language>fr</dc:language>
		<dc:creator>Olga DIMITRIEV</dc:creator>



		<description>
&lt;p&gt;ISTerre laboratoire de microsonde &#233;lectronique : 2012-2021 ans. EPMA Jeol JXA 8230. &lt;br class='autobr' /&gt; &lt;br class='autobr' /&gt;
16 juillet 2021. Adieu, notre bon vieil ami Jeol JXA 8230. &lt;br class='autobr' /&gt; &lt;br class='autobr' /&gt;
Le nouveau laboratoire IMAP EPMA depuis 2022 &lt;br class='autobr' /&gt; Infrastructure : Syst&#232;me de climatisation pour le laboratoire EPMA pr&#233;sentant une temp&#233;rature stable sup&#233;rieure &#224; &#177; 0,5 &#176;C et une humidit&#233; relative sup&#233;rieure &#224; &#177; 5 %. &lt;br class='autobr' /&gt;
BACK&lt;/p&gt;


-
&lt;a href="https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/" rel="directory"&gt;Plateforme MicroAnalytique ISTerre IMAP&lt;/a&gt;


		</description>


 <content:encoded>&lt;div class='rss_texte'&gt;&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;div class='spip_document_11536 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_2866-1.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH150/img_2866-1-65b44.jpg?1789506427' width='500' height='150' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;ISTerre laboratoire de microsonde &#233;lectronique : 2012-2021 ans. EPMA Jeol JXA 8230.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;
&lt;p&gt; &lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;div class='spip_document_11537 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_4429-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/img_4429-2-9c867.jpg?1789506428' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;16 juillet 2021. Adieu, notre bon vieil ami Jeol JXA 8230.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;
&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;div class='spip_document_13532 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/1_epma_new_img_8532-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/1_epma_new_img_8532-2-29586.jpg?1789506428' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;Le nouveau laboratoire IMAP EPMA depuis 2022&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;
&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;div class='spip_document_11567 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/img_5223-4-3-r90.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH667/img_5223-4-3-r90-2759f.jpg?1789506428' width='500' height='667' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;Infrastructure : Syst&#232;me de climatisation pour le laboratoire EPMA pr&#233;sentant une temp&#233;rature stable sup&#233;rieure &#224; &#177; 0,5 &#176;C et une humidit&#233; relative sup&#233;rieure &#224; &#177; 5 %.&lt;/strong&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;
&lt;p&gt;&lt;a href=&#034;https://www.isterre.fr/french/services-plateformes/plateforme-microanalytique-isterre-imap/&#034;&gt;BACK&lt;/a&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;&lt;/div&gt;
		
		</content:encoded>


		

	</item>
<item xml:lang="fr">
		<title>Laboratoire de microsonde &#233;lectronique : EPMA JEOL FEG JXA-iHP200F</title>
		<link>https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/article/laboratoire-de-microsonde-electronique-epma-jeol-feg-jxa-ihp200f.html</link>
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		<dc:date>2021-12-06T14:00:14Z</dc:date>
		<dc:format>text/html</dc:format>
		<dc:language>fr</dc:language>
		<dc:creator>Olga DIMITRIEV</dc:creator>



		<description>
&lt;p&gt;Responsable : Valentina Batanova &lt;br class='autobr' /&gt;
Op&#233;rateurs : Valentina Batanova, Val&#233;rie Mangin, Julien Leger Reservation EPMA &lt;br class='autobr' /&gt; La JXA-iHP200F est une microsonde &#233;lectronique &#224; &#233;mission de champ, la derni&#232;re g&#233;n&#233;ration de microsonde JEOL. Elle permet de passer directement de l'observation par images optiques et &#233;lectroniques &#224; l'analyse avec dispersion de longueur d'ondes (WDS), spectroscopie de rayons X &#224; dispersion d'&#233;nergie (EDS), cathodoluminescence (CL) et de r&#233;aliser des analyses quantitatives (&#8230;)&lt;/p&gt;


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&lt;a href="https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/" rel="directory"&gt;Plateforme MicroAnalytique ISTerre IMAP&lt;/a&gt;


		</description>


 <content:encoded>&lt;div class='rss_texte'&gt;&lt;p&gt;Responsable : &lt;a href=&#034;#&#034; title=&#034; valentina.batanova..&#229;t..univ-grenoble-alpes.fr;&#034; onclick=&#034;location.href=lancerlien(' valentina.batanova,6aa9b37c305b8,univ-grenoble-alpes.fr;',',6aa9b37c305b8,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Valentina Batanova&lt;/a&gt;&lt;/p&gt;
&lt;p&gt;Op&#233;rateurs : &lt;a href=&#034;#&#034; title=&#034;mailto:valentina.batanova..&#229;t..univ-grenoble-alpes.fr;&#034; onclick=&#034;location.href=lancerlien('mailto:valentina.batanova,6aa9b37c305e7,univ-grenoble-alpes.fr;',',6aa9b37c305e7,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Valentina Batanova&lt;/a&gt;, &lt;a href=&#034;#&#034; title=&#034; valerie.magnin..&#229;t..univ-grenoble-alpes.fr;&#034; onclick=&#034;location.href=lancerlien(' valerie.magnin,6aa9b37c305fc,univ-grenoble-alpes.fr;',',6aa9b37c305fc,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Val&#233;rie Mangin&lt;/a&gt;, &lt;a href=&#034;#&#034; title=&#034; Julien.Leger..&#229;t..univ-grenoble-alpes.fr&#034; onclick=&#034;location.href=lancerlien(' Julien.Leger,6aa9b37c3060e,univ-grenoble-alpes.fr',',6aa9b37c3060e,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Julien Leger&lt;/a&gt;&lt;/p&gt;
&lt;a href='https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/article/reservation-epma.html' class=&#034;spip_in&#034;&gt;&lt;h3 class=&#034;spip&#034;&gt;Reservation EPMA&lt;/h3&gt;&lt;/a&gt;
&lt;p&gt; La JXA-iHP200F est une microsonde &#233;lectronique &#224; &#233;mission de champ, la derni&#232;re g&#233;n&#233;ration de microsonde JEOL. Elle permet de passer directement de l'observation par images optiques et &#233;lectroniques &#224; l'analyse avec dispersion de longueur d'ondes (WDS), spectroscopie de rayons X &#224; dispersion d'&#233;nergie (EDS), cathodoluminescence (CL) et de r&#233;aliser des analyses quantitatives de particules submicroniques pour les &#233;l&#233;ments allant du B &#224; l'U avec des limites de d&#233;tection de l'ordre de 10 ppm.&lt;/p&gt;
&lt;div class='spip_document_11760 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/microsond-last.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/microsond-last-754e9.jpg?1789506428' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;&lt;hr class=&#034;spip&#034; /&gt;&lt;a href='https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/article/galerie-de-photos-microsonde-electronique.html' class=&#034;spip_in&#034;&gt;&lt;h3 class=&#034;spip&#034;&gt;&lt;span style=&#034;color:#0f6db7&#034;&gt;Galerie de photos&lt;/span&gt;&lt;/h3&gt;&lt;/a&gt;
&lt;p&gt;&lt;a href=&#034;https://www.isterre.fr/french/services-plateformes/plateforme-microanalytique-isterre-imap/&#034;&gt;BACK&lt;/a&gt;&lt;/p&gt;&lt;/div&gt;
		
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	</item>
<item xml:lang="fr">
		<title>Tandem LIBS&#8211;LA&#8211;ICP&#8211;MS laboratory</title>
		<link>https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/article/tandem-libs-la-icp-ms-laboratory.html</link>
		<guid isPermaLink="true">https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/article/tandem-libs-la-icp-ms-laboratory.html</guid>
		<dc:date>2021-12-06T13:58:52Z</dc:date>
		<dc:format>text/html</dc:format>
		<dc:language>fr</dc:language>
		<dc:creator>Olga DIMITRIEV</dc:creator>



		<description>
&lt;p&gt;Responsables : Valentina Batanova, Adrien Vezinet Op&#233;rateurs : Valentina Batanova, Adrien Vezinet, Julien Leger &lt;br class='autobr' /&gt;
Reservation LA-ICP-MS &lt;br class='autobr' /&gt;
Le premier syst&#232;me, qui combine un laser excimer avec un flux divis&#233; entre un multicollecteur (Mc-ICP-MS) et un triple quadruple ICP MS et un Laser-Induced Breakdown Spectrometer (LIBS). Le syst&#232;me est capable d'analyser simultan&#233;ment les &#233;l&#233;ments majeurs, mineurs, traces et leurs isotopes, y compris les volatiles, avec une r&#233;solution spatiale allant (&#8230;)&lt;/p&gt;


-
&lt;a href="https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/" rel="directory"&gt;Plateforme MicroAnalytique ISTerre IMAP&lt;/a&gt;


		</description>


 <content:encoded>&lt;div class='rss_texte'&gt;&lt;p&gt;Responsables : &lt;a href=&#034;#&#034; title=&#034; valentina.batanova..&#229;t..univ-grenoble-alpes.fr;&#034; onclick=&#034;location.href=lancerlien(' valentina.batanova,6aa9b37c4b2e5,univ-grenoble-alpes.fr;',',6aa9b37c4b2e5,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Valentina Batanova&lt;/a&gt;, &lt;a href=&#034;#&#034; title=&#034;adrien.vezinet..&#229;t..univ-grenoble-alpes.fr;&#034; onclick=&#034;location.href=lancerlien('adrien.vezinet,6aa9b37c4b32a,univ-grenoble-alpes.fr;',',6aa9b37c4b32a,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Adrien Vezinet&lt;/a&gt;&lt;br class='autobr' /&gt;
Op&#233;rateurs : &lt;a href=&#034;#&#034; title=&#034; valentina.batanova..&#229;t..univ-grenoble-alpes.fr;&#034; onclick=&#034;location.href=lancerlien(' valentina.batanova,6aa9b37c4b34e,univ-grenoble-alpes.fr;',',6aa9b37c4b34e,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Valentina Batanova&lt;/a&gt;, &lt;a href=&#034;#&#034; title=&#034;adrien.vezinet..&#229;t..univ-grenoble-alpes.fr;&#034; onclick=&#034;location.href=lancerlien('adrien.vezinet,6aa9b37c4b36a,univ-grenoble-alpes.fr;',',6aa9b37c4b36a,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Adrien Vezinet&lt;/a&gt;, &lt;a href=&#034;#&#034; title=&#034; Julien.Leger..&#229;t..univ-grenoble-alpes.fr&#034; onclick=&#034;location.href=lancerlien(' Julien.Leger,6aa9b37c4b384,univ-grenoble-alpes.fr',',6aa9b37c4b384,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Julien Leger&lt;/a&gt;&lt;/p&gt;
&lt;h3 class=&#034;spip&#034;&gt;&lt;a href='https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/article/reservation-la-icp-ms.html' class=&#034;spip_in&#034;&gt;Reservation LA-ICP-MS&lt;/a&gt;&lt;/h3&gt;
&lt;p&gt;Le premier syst&#232;me, qui combine un laser excimer avec un flux divis&#233; entre un multicollecteur (Mc-ICP-MS) et un triple quadruple ICP MS et un Laser-Induced Breakdown Spectrometer (LIBS). Le syst&#232;me est capable d'analyser simultan&#233;ment les &#233;l&#233;ments majeurs, mineurs, traces et leurs isotopes, y compris les volatiles, avec une r&#233;solution spatiale allant jusqu'&#224; 5 microm&#232;tres.&lt;/p&gt;
&lt;div class='spip_document_11483 spip_document spip_documents spip_document_image spip_documents_left spip_document_left'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/laser_ablation-2-3-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH281/laser_ablation-2-3-2-a5e6e.jpg?1789506428' width='500' height='281' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;The tandem LIBS-laser ablation (LA) system can be connected to each instrument for a single stream LIBS&#8211;LA&#8211;ICP&#8211;MS analyses or to both instruments for tandem LIBS&#8211;LA split stream analyses (LIBS&#8211;LASS)&lt;/p&gt;
&lt;div class='spip_document_11484 spip_document spip_documents spip_document_image spip_documents_left spip_document_left'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/laser_ablation-1-2-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH281/laser_ablation-1-2-2-d9402.jpg?1789506428' width='500' height='281' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;div class='spip_document_11485 spip_document spip_documents spip_document_image spip_documents_left spip_document_left'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/icp-ms-3-2-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH281/icp-ms-3-2-2-25f74.jpg?1789506428' width='500' height='281' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;&lt;div class='spip_document_11486 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/neptune-4-3-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH281/neptune-4-3-2-22a03.jpg?1789506428' width='500' height='281' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;&lt;a href='https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/article/galerie-de-photos-laboratoire-la-icp-ms.html' class=&#034;spip_in&#034;&gt;&lt;h3 class=&#034;spip&#034;&gt;&lt;span style=&#034;color:#0f6db7&#034;&gt;Galerie de photos&lt;/span&gt;&lt;/h3&gt;&lt;/a&gt;
&lt;p&gt;&lt;a href=&#034;https://www.isterre.fr/french/services-plateformes/plateforme-microanalytique-isterre-imap/&#034;&gt;BACK&lt;/a&gt;&lt;/p&gt;&lt;/div&gt;
		
		</content:encoded>


		

	</item>
<item xml:lang="en">
		<title>Electron microprobe laboratory: EPMA JEOL FEG JXA-iHP200F</title>
		<link>https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/article/electron-microprobe-laboratory-epma-jeol-feg-jxa-ihp200f.html</link>
		<guid isPermaLink="true">https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/article/electron-microprobe-laboratory-epma-jeol-feg-jxa-ihp200f.html</guid>
		<dc:date>2021-12-06T13:53:29Z</dc:date>
		<dc:format>text/html</dc:format>
		<dc:language>en</dc:language>
		<dc:creator>Olga DIMITRIEV</dc:creator>



		<description>
&lt;p&gt;Responsible: Valentina Batanova
&lt;br class='autobr' /&gt;
Operators: Valentina Batanova, Val&#233;rie Mangin, Julien Leger Reservation EPMA &lt;br class='autobr' /&gt; The JXA-iHP200F is an electronic field emission microprobe, the latest generation of JEOL microprobes. It makes it possible to go directly from observation by optical and electronic images to analysis with wavelength dispersion (WDS), energy dispersive X-ray spectroscopy (EDS), cathodoluminescence (CL) and to perform quantitative analyzes of submicron particles for elements (&#8230;)&lt;/p&gt;


-
&lt;a href="https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/" rel="directory"&gt;ISTerre MicroAnalytical Platform IMAP&lt;/a&gt;


		</description>


 <content:encoded>&lt;div class='rss_texte'&gt;&lt;p&gt;Responsible: &lt;a href=&#034;#&#034; title=&#034; valentina.batanova..&#229;t..univ-grenoble-alpes.fr&#034; onclick=&#034;location.href=lancerlien(' valentina.batanova,6aa9b37c66935,univ-grenoble-alpes.fr',',6aa9b37c66935,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Valentina Batanova&lt;/a&gt;&lt;br class='autobr' /&gt;
Operators: &lt;a href=&#034;#&#034; title=&#034; valentina.batanova..&#229;t..univ-grenoble-alpes.fr&#034; onclick=&#034;location.href=lancerlien(' valentina.batanova,6aa9b37c66962,univ-grenoble-alpes.fr',',6aa9b37c66962,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Valentina Batanova&lt;/a&gt;, &lt;a href=&#034;#&#034; title=&#034;valerie.magnin..&#229;t..univ-grenoble-alpes.fr&#034; onclick=&#034;location.href=lancerlien('valerie.magnin,6aa9b37c66976,univ-grenoble-alpes.fr',',6aa9b37c66976,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Val&#233;rie Mangin&lt;/a&gt;, &lt;a href=&#034;#&#034; title=&#034; Julien.Leger..&#229;t..univ-grenoble-alpes.fr&#034; onclick=&#034;location.href=lancerlien(' Julien.Leger,6aa9b37c6698c,univ-grenoble-alpes.fr',',6aa9b37c6698c,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Julien Leger&lt;/a&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
&lt;a href='https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/article/reservation-epma.html' class=&#034;spip_in&#034;&gt;&lt;h3 class=&#034;spip&#034;&gt;Reservation EPMA&lt;/h3&gt;&lt;/a&gt;
&lt;p&gt; The JXA-iHP200F is an electronic field emission microprobe, the latest generation of JEOL microprobes. It makes it possible to go directly from observation by optical and electronic images to analysis with wavelength dispersion (WDS), energy dispersive X-ray spectroscopy (EDS), cathodoluminescence (CL) and to perform quantitative analyzes of submicron particles for elements ranging from B to U with detection limits of the order of 10 ppm&lt;/p&gt;
&lt;div class='spip_document_11760 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/microsond-last.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH375/microsond-last-754e9.jpg?1789506428' width='500' height='375' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;&lt;hr class=&#034;spip&#034; /&gt;&lt;a href='https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/article/photo-gallery-electron-microprobe.html' class=&#034;spip_in&#034;&gt;&lt;h3 class=&#034;spip&#034;&gt;&lt;span style=&#034;color:#0f6db7&#034;&gt;Photo gallery&lt;/span&gt;&lt;/h3&gt;&lt;/a&gt;
&lt;p&gt;&lt;a href=&#034;https://www.isterre.fr/english/platforms-services-1235/isterre-microanalytical-platform-imap&#034;&gt;BACK&lt;/a&gt;&lt;/p&gt;
&lt;hr class=&#034;spip&#034; /&gt;&lt;/div&gt;
		
		</content:encoded>


		

	</item>
<item xml:lang="en">
		<title>Tandem LIBS&#8211;LA&#8211;ICP&#8211;MS laboratory</title>
		<link>https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/article/tandem-libs-la-icp-ms-laboratory.html</link>
		<guid isPermaLink="true">https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/article/tandem-libs-la-icp-ms-laboratory.html</guid>
		<dc:date>2021-12-06T13:52:47Z</dc:date>
		<dc:format>text/html</dc:format>
		<dc:language>en</dc:language>
		<dc:creator>Olga DIMITRIEV</dc:creator>



		<description>
&lt;p&gt;Responsible: Valentina Batanova, Adrien Vezinet Operators: Valentina Batanova, Adrien Vezinet, Julien Leger &lt;br class='autobr' /&gt; Reservation LA-ICP-MS &lt;br class='autobr' /&gt;
The first system, which combines an excimer laser with a flux divided between a multicollector (Mc-ICP-MS) and a triple quadruple ICP MS and a Laser-Induced Breakdown Spectrometer (LIBS). The system is capable of simultaneously analyzing major, minor, trace elements and their isotopes, including volatiles, with a spatial resolution of up to 5 micrometers. (&#8230;)&lt;/p&gt;


-
&lt;a href="https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/" rel="directory"&gt;ISTerre MicroAnalytical Platform IMAP&lt;/a&gt;


		</description>


 <content:encoded>&lt;div class='rss_chapo'&gt;&lt;p&gt;Responsible: &lt;a href=&#034;#&#034; title=&#034; valentina.batanova..&#229;t..univ-grenoble-alpes.fr&#034; onclick=&#034;location.href=lancerlien(' valentina.batanova,6aa9b37c685b4,univ-grenoble-alpes.fr',',6aa9b37c685b4,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Valentina Batanova&lt;/a&gt;, &lt;a href=&#034;#&#034; title=&#034;adrien.vezinet..&#229;t..univ-grenoble-alpes.fr&#034; onclick=&#034;location.href=lancerlien('adrien.vezinet,6aa9b37c685db,univ-grenoble-alpes.fr',',6aa9b37c685db,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Adrien Vezinet&lt;/a&gt;&lt;br class='autobr' /&gt;
Operators: &lt;a href=&#034;#&#034; title=&#034; valentina.batanova..&#229;t..univ-grenoble-alpes.fr&#034; onclick=&#034;location.href=lancerlien(' valentina.batanova,6aa9b37c685f0,univ-grenoble-alpes.fr',',6aa9b37c685f0,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Valentina Batanova&lt;/a&gt;, &lt;a href=&#034;#&#034; title=&#034;adrien.vezinet..&#229;t..univ-grenoble-alpes.fr&#034; onclick=&#034;location.href=lancerlien('adrien.vezinet,6aa9b37c68602,univ-grenoble-alpes.fr',',6aa9b37c68602,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Adrien Vezinet&lt;/a&gt;, &lt;a href=&#034;#&#034; title=&#034; Julien.Leger..&#229;t..univ-grenoble-alpes.fr&#034; onclick=&#034;location.href=lancerlien(' Julien.Leger,6aa9b37c68612,univ-grenoble-alpes.fr',',6aa9b37c68612,'); return false;&#034; class=&#034;spip_mail&#034;&gt;Julien Leger&lt;/a&gt;&lt;/p&gt;
&lt;h3 class=&#034;spip&#034;&gt;&lt;a href='https://www.isterre.fr/french/ressources/plateforme-microanalytique-isterre-imap/article/reservation-la-icp-ms.html' class=&#034;spip_in&#034; hreflang=&#034;fr&#034;&gt;Reservation LA-ICP-MS&lt;/a&gt;&lt;/h3&gt;
&lt;p&gt;The first system, which combines an excimer laser with a flux divided between a multicollector (Mc-ICP-MS) and a triple quadruple ICP MS and a Laser-Induced Breakdown Spectrometer (LIBS). The system is capable of simultaneously analyzing major, minor, trace elements and their isotopes, including volatiles, with a spatial resolution of up to 5 micrometers.&lt;/p&gt;&lt;/div&gt;
		&lt;div class='rss_texte'&gt;&lt;div class='spip_document_11474 spip_document spip_documents spip_document_image spip_documents_left spip_document_left'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/laser_ablation-2-3.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH281/laser_ablation-2-3-df915.jpg?1789506428' width='500' height='281' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;The tandem LIBS-laser ablation (LA) system can be connected to each instrument for a single stream LIBS&#8211;LA&#8211;ICP&#8211;MS analyses or to both instruments for tandem LIBS&#8211;LA split stream analyses (LIBS&#8211;LASS)&lt;/p&gt;
&lt;div class='spip_document_11472 spip_document spip_documents spip_document_image spip_documents_left spip_document_left'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/laser_ablation-1-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH281/laser_ablation-1-2-2d976.jpg?1789506428' width='500' height='281' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;&lt;div class='spip_document_11477 spip_document spip_documents spip_document_image spip_documents_left spip_document_left'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/icp-ms-3-2.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH281/icp-ms-3-2-072ee.jpg?1789506428' width='500' height='281' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;&lt;div class='spip_document_11480 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/jpg/neptune-4-3.jpg' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/jpeg&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH281/neptune-4-3-d6faf.jpg?1789506428' width='500' height='281' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;&lt;hr class=&#034;spip&#034; /&gt;&lt;a href='https://www.isterre.fr/english/resources/isterre-microanalytical-platform-imap/article/photos-gallery-libs-la-icp-ms-laboratory.html' class=&#034;spip_in&#034;&gt;&lt;h3 class=&#034;spip&#034;&gt;&lt;span style=&#034;color:#0f6db7&#034;&gt;Photo gallery&lt;/span&gt;&lt;/h3&gt;&lt;/a&gt;
&lt;p&gt;&lt;a href=&#034;https://www.isterre.fr/english/platforms-services-1235/isterre-microanalytical-platform-imap/&#034;&gt;BACK&lt;/a&gt;&lt;br class='manualbr' /&gt;&lt;/p&gt;
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