Subduction zone sulfur mobilization and redistribution by intraslab fluid-rock interaction

被引:12
|
作者
Li, Ji-Lei [1 ,2 ]
Schwarzenbach, Esther M. [3 ]
John, Timm [3 ]
Ague, Jay J. [4 ]
Tassara, Santiago [4 ]
Gao, Jun [1 ,2 ]
Konecke, Brian A. [5 ]
机构
[1] Chinese Acad Sci, Inst Geol & Geophys, Key Lab Mineral Resources, POB 9825, Beijing 100029, Peoples R China
[2] Chinese Acad Sci, Inst Earth Sci, Beijing 100029, Peoples R China
[3] Free Univ Berlin, Inst Geolog Wissensch, Malteserstr 74-100, D-12249 Berlin, Germany
[4] Yale Univ, Dept Earth & Planetary Sci, POB 208109, New Haven, CT 06511 USA
[5] NASA Johnson Space Ctr, Astromat Res & Explorat Sci ARES, Houston, TX USA
基金
中国国家自然科学基金;
关键词
Sulfur; Slab fluids; Fluid-rock interaction; Vein; Eclogite; Tianshan; SEA-FLOOR SERPENTINIZATION; TRACE-ELEMENT MOBILIZATION; HIGH-PRESSURE ROCKS; WESTERN TIANSHAN; OCEANIC-CRUST; MASS-TRANSFER; TECTONIC IMPLICATIONS; OXIDIZING FLUIDS; ISOTOPIC PROFILE; REDOX BUDGET;
D O I
10.1016/j.gca.2021.01.011
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
Subduction zones mediate the sulfur exchange between Earth's interior and surface, and play a critical role in the long-term global sulfur cycle. Dehydration of the subducted slab releases aqueous fluids, which in turn interact with the surrounding wall-rocks during reactive flow through the slab. Fluids are regarded as the key agent for sulfur transfer within the slab and subsequently into the mantle wedge. However, the mechanisms underlying sulfur mobilization and redistribution during fluid-rock interaction are not fully understood. Here, we investigate three high-pressure blueschist/eclogite-selvage-vein systems from the Southwestern Tianshan metamorphic belt in northwestern China to explore sulfur behavior during fluid-rock interaction along channelized fluid pathways and within their alteration halos. Petrologic observations on mineral parageneses and delta S-34 compositions of sulfides reveal two different scenarios of sulfur mobilization and redistribution during fluid-rock interaction at HP conditions. Fe-rich and medium-fS(2) (near the pyrite-pyrrhotite buffer) fluids favor pyrrhotite stability over pyrite and can trigger the pyrite-to-pyrrhotite transition in the reaction halo. In this case the bulk-rock sulfur budget may not vary but the sulfur isotope exchange is still effective, producing a delta S-34 mixing trend in the metasomatic zones. In contrast, Fepoor and high-fS(2) fluids cause conversion of pyrrhotite to pyrite, significant sulfur addition, and sulfur isotope exchange in alteration selvages. Medium-fS(2) fluids can transport sulfur and thus are effective in transferring sulfur out of the slab, whereas high-fS(2) fluids cause sulfur sequestration along fluid pathways and considerably reduce long-distance sulfur transfer. Multiple fluid infiltration events with different fluid sources result in several pyrite overgrowth sequences, recorded by contrasting CoNi element distributions and in-situ delta S-34 zoning of pyrite. The heaviest delta S-34 value (+25%) thus far reported in HP rocks has been found in vein pyrite, suggesting that a seawater sulfate-derived delta S-34 signature can be transported to great depths in a subduction zone, even though the timing and mechanism of sulfate-to-sulfide reduction in the subduction zone remain unconstrained. Our study provides natural evidence for fluid-mediated sulfide transformation, sulfur transport/storage, and sulfur isotope exchange during fluid-rock interaction, and illuminates the role these processes play in sulfur release from the subducting slab and sulfur subduction into the deep mantle. (C) 2021 Elsevier Ltd. All rights reserved.
引用
收藏
页码:40 / 64
页数:25
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