Magma Redox Geochemistry. Группа авторов

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R., Albarede, F., & Leeman, W. P. (2010). The redox state of arc mantle using Zn/Fe systematics. Nature, 468(7324), 681–685.

      128 Lee, C. T. A., Luffi, P., Chin, E. J., Bouchet, R., Dasgupta, R., Morton, D. M., et al. (2012). Copper systematics in arc magmas and implications for crust‐mantle differentiation. Science, 336(6077), 64–68. doi: 10.1126/science.1217313

      129 Levin, V., Park, J., Brandon, M., Lees, J., Peyton, V., Gordeev, E., & Ozerov, A. (2002). Crust and upper mantle of Kamchatka from teleseismic receiver functions. Tectonophysics, 358(1–4), 233–265. doi: 10.1016/s0040‐1951(02)00426‐2

      130 Li, J., Kornprobst, J., Vielzeuf, D., & Fabriès, J. (1995). An improved experimental calibration of the olivine‐spinel geothermometer. Chinese Journal of Geochemistry, 14(1), 68–77.

      131 Luhr, J. F. (2000). The geology and petrology of Volcán San Juan (Nayarit, México) and the compositionally zoned Tepic Pumice. Journal of Volcanology and Geothermal Research, 95, 109–156.

      132 Luhr, J. F., & Carmichael, I. S. E. (1980). The Colima Volcanic complex, Mexico: I. Post‐caldera andesite from Volcán Colima. Contributions to Mineralogy and Petrology, 71, 343–372.

      133 Mallmann, G., & O'Neill, H. S. C. (2007). The effect of oxygen fugacity on the partitioning of Re between crystals and silicate melt during mantle melting. Geochimica et Cosmochimica Acta, 71(11), 2837–2857. doi: 10.1016/j.gca.2007.03.028

      134 Mallmann, G., & O'Neill, H. S. C. (2009). The Crystal/Melt Partitioning of V during Mantle Melting as a Function of Oxygen Fugacity Compared with some other Elements (Al, P, Ca, Sc, Ti, Cr, Fe, Ga, Y, Zr and Nb). Journal of Petrology, 50(9), 1765–1794. doi: 10.1093/petrology/egp053

      135 Mallmann, G., & O'Neill, H. S. (2013). Calibration of an empirical thermometer and oxybarometer based on the partitioning of Sc, Y and V between olivine and silicate melt. Journal of Petrology, 54(5), 933–949. doi: 10.1093/petrology/egt001

      136 Mallmann, G., Burnham, A., & Fonseca, R. O. (2021). Mineral‐melt partitioning of redox‐sensitive elements. In: Neuville, D. R., Moretti, R. (eds.) AGU Geophysical Monograph Redox variables and mechanisms in magmatism and volcanism. Wiley.

      137 Manalo, P. C., Dirnalanta, C.B., Faustino‐Eslava, D. V., Ramos, N. T., Queano, K. L., & Yumul, G. P. (2015). Crustal thickness variation from a continental to an island arc terrane: Clues from the gravity signatures of the Central Philippines. Journal of Asian Earth Sciences, 104, 205–214. doi: 10.1016/j.jseaes.2014.08.031

      138 Mandeville, C. W., Carey, S., & Sigurdsson, H. (1996). Magma mixing, fractional crystallization and volatile degassing during the 1883 eruption of Krakatau volcano, Indonesia. Journal of Volcanology and Geothermal Research, 74(3–4), 243–274.

      139 Mazzullo, L. J., & Bence, A. (1976). Abyssal tholeiites from DSDP Leg 34: the Nazca plate. Journal of Geophysical Research, 81(23), 4327–4351.

      140 McGlashan, N., Brown, L., & Kay, S. M. (2008). Crustal thickness in the central Andes from teleseismically recorded depth phase precursors. Geophysical Journal International, 175(3), 1013–1022. doi: 10.1111/j.1365‐246X.2008.03897.x

      141 McKenzie, D., & Onions, R. K. (1983). Mantle reservoirs and ocean island basalts. Nature, 301(5897), 229–231.

      142 Montelli, R., Nolet, G., Dahlen, F. A., & Masters, G. (2006). A catalogue of deep mantle plumes: New results from finite‐frequency tomography. Geochemistry, Geophysics, Geosystems, 7(11). doi: 10.1029/2006gc001248

      143 Moussallam, Y., Edmonds, M., Scaillet, B., Peters, N., Gennaro, E., Sides, I., & Oppenheimer, C. (2016). The impact of degassing on the oxidation state of basaltic magmas: A case study of Kīlauea volcano. Earth and Planetary Science Letters, 450, 317–325.

      144 Moussallam, Y., Oppenheimer, C., Scaillet, B., Gaillard, F., Kyle, P., Peters, N., et al. (2014). Tracking the changing oxidation state of Erebus magmas, from mantle to surface, driven by magma ascent and degassing. Earth and Planetary Science Letters, 393, 200–209.

      145 Moussallam, Y., Longpré, M.‐A., McCammon, C., Gomez‐Ulla, A., Rose‐Koga, E. F., Scaillet, B., et al. (2019). Mantle plumes are oxidised. Earth and Planetary Science Letters, 527. doi: 10.1016/j.epsl.2019.115798

      146 Muir, D. D., Blundy, J. D., Rust, A. C., & Hickey, J. (2014). Experimental constraints on dacite pre‐eruptive magma storage conditions beneath Uturuncu Volcano. Journal of Petrology, 55(4), 749–767. doi: 10.1093/petrology/egu005

      147 Mungall, J. E. (2002). Roasting the mantle: Slab melting and the genesis of major Au and Au‐rich Cu deposits. Geology, 30(10), 915–918.

      148 Myers, C. E., & Eugster, H. P. (1983). The system Fe‐Si‐O: Oxygen buffer calibrations to 1500K. Contributions to Mineralogy and Petrology, 82, 75–90.

      149 Mysen, B. O. (2006). Redox equilibria of iron and silicate melt structure: Implications for olivine/melt element partitioning. Geochimica et Cosmochimica Acta, 70(12), 3121–3138. doi: 10.1016/j.gca.2006.03.014

      150 Mysen, B. O., Kumamoto, K., Cody, G. D., & Fogel, M. L. (2011). Solubility and solution mechanisms of C–O–H volatiles in silicate melt with variable redox conditions and melt composition at upper mantle temperatures and pressures. Geochimica et Cosmochimica Acta, 75, 6183–6199. doi: 10.1016/j.gca.2011.07.035

      151 Nebel, O., Sossi, P. A., Bénard, A., Wille, M., Vroon, P. Z., & Arculus, R. J. (2015). Redox‐variability and controls in subduction zones from an iron‐isotope perspective. Earth and Planetary Science Letters, 432, 142–151. doi: 10.1016/j.epsl.2015.09.036

      152 Nell, J., & Wood, B. J. (1991). High‐temperature electrical measurements and thermodynamic properties of Fe3O4‐FeCr2O4‐MgCr2O4‐FeAl2O4 spinels. American Mineralogist, 76(3–4), 405–426.

      153 Neumann, E.‐R. (1991). Ultramafic and mafic xenoliths from Hierro, Canary Islands: evidence for melt infiltration in the upper mantle. Contributions to Mineralogy and Petrology, 106(2), 236–252.

      154 Neumann, E. R., Wulff‐Pedersen, E., Pearson, N. J., & Spencer, E. A. (2002). Mantle xenoliths from Tenerife (Canary Islands): evidence for reactions between mantle peridotites and silicic carbonatite melts inducing Ca metasomatism. Journal of Petrology, 43(5), 825–857.

      155 Neumann, E. R., Wulff‐Pedersen, E., Johnsen, K., Andersen, T., & Krogh, E. (1995). Petrogenesis of spinel harzburgite and dunite suite xenoliths from Lanzarote, eastern Canary Islands: implications for the upper mantle. Lithos, 35(1–2), 83–107.

      156 Newcombe, M., Brett, A., Beckett, J., Baker, M., Newman, S., Guan, Y., et al. (2017). Solubility of water in lunar basalt at low PH2O. Geochimica et Cosmochimica Acta, 200, 330–352.

      157 Nicklas, R. W., Puchtel, I. S., Ash, R. D., Piccoli, P. M., Hanski, E., Nisbet, E. G., et al. (2019). Secular mantle oxidation across the Archean‐Proterozoic boundary: Evidence from V partitioning in komatiites and picrites. Geochimica et Cosmochimica Acta, 250, 49–75. doi: 10.1016/j.gca.2019.01.037

      158 Nicolich, R., Laigle, M., Hirn, A., Cernobori, L., & Gallart, J. (2000). Crustal structure of the Ionian margin of Sicily: Etna Volcano in the Fram of regional evolution. Tectonophysics, 329, 121–139.

      159 O’Neill, H. S., & Pownceby, M. I. (1993). Thermodynamic data from redox reactions at high temperatures. 1. An experimental and theoretical assessment of the electrochemical method using stabilized zirconia electrolytes, with revised values for the Fe‐ FeO, Co‐CoO, Ni‐NiO and Cu‐Cu2O oxygen buffers,

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