Oxide-silicate petrology and geochemistry of subducted hydrous ultramafic rocks beyond antigorite dehydration (Central Alps, Switzerland)

被引:1
|
作者
Duarte, Joana Filipa Vieira [1 ]
Pettke, Thomas [1 ]
Hermann, Jorg [1 ]
Piccoli, Francesca [1 ]
机构
[1] Inst Geol Sci, Baltzerstr 1 3, CH-3012 Bern, Switzerland
基金
瑞士国家科学基金会;
关键词
Metaperidotite; Redox; Subduction; Oxide; Silicate; Geochemistry; CIMA-DI-GAGNONE; SERPENTINITE DEHYDRATION; ABYSSAL PERIDOTITES; PHASE-RELATIONS; METAMORPHISM; MAGNETITE; BUDGETS; FLOOR; IRON;
D O I
10.1007/s00410-023-02032-w
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Oxide minerals contained in ultramafic rocks are useful tools to assess the redox conditions of the rock and fluids liberated upon progressive serpentinite dehydration during subduction, as these minerals contain a relevant redox-sensitive element, iron. Previous studies have revealed that magnetite predominates across the antigorite-out reaction. However, the fate of magnetite and other oxides at higher pressure and temperature conditions has remained underexplored. We present a comprehensive petrological and geochemical study of oxide-sulfide-silicate mineral assemblages in metaperidotites beyond antigorite- and chlorite-out reactions (T = 650-850 & DEG;C and P = 1-3 GPa). Several ultramafic lenses, covering different bulk rock compositions and extents of oxidation upon oceanic serpentinization, were investigated from the Central Alps, Switzerland. Results point to two endmember scenarios: (i) Most frequently, metaperidotites have olivine with a Mg# of 89-91 (defined as molar Mg/(Mg + Fe-tot) x 100) and contain low oxide modes (0.06-1.41 vol.%), hematite is absent, and redox conditions are weakly oxidized and buffered by orthopyroxene-olivine-magnetite. (ii) Rare occurrence, high olivine Mg# > 94.5 metaperidotites display coexisting hematite and magnetite, high oxide modes (up to 4 vol.%), and redox conditions are hematite-magnetite (HM) buffered (& UDelta;log(10)fO(2),(QFM) of + 3 to + 4). Spinel displays evolving compositions from magnetite over chromite to Al-Cr-spinel, roughly correlating with increasing temperature. Most of the samples buffered by the olivine-orthopyroxene-magnetite assemblage contain coexisting pentlandite & PLUSMN; pyrrhotite, thus identifying stable sulfides beyond antigorite dehydration for these weakly oxidized samples (& UDelta;log(10)fO(2),(QFM) < 2.5). No sulfides were recognized in the highly oxidized sample. The transition of magnetite to chromite at around 700 & DEG;C goes along with a shift in fO(2) to lower values. At the prevailing oxygen fugacity in the weakly oxidized metaperidotites sulfur in a coexisting fluid is always present in its reduced form. However, oxidized sulfur can be stable in the dehydration fluids released from highly oxidized serpentinites.
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页数:29
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