Iron partitioning and hydrogen generation during serpentinization of abyssal peridotites from 15°N on the Mid-Atlantic Ridge

被引:283
作者
Klein, Frieder [1 ]
Bach, Wolfgang [1 ]
Joens, Niels [1 ]
McCollom, Tom [2 ,3 ]
Moskowitz, Bruce [4 ]
Berquo, Thelma [4 ]
机构
[1] Univ Bremen, Dept Geosci, D-28359 Bremen, Germany
[2] Univ Colorado, CU Ctr Astrobiol, Boulder, CO 80309 USA
[3] Univ Colorado, Atmospher & Space Phys Lab, Boulder, CO 80309 USA
[4] Univ Minnesota, Dept Geol & Geophys, Inst Rock Magnetism, Minneapolis, MN 55455 USA
基金
美国国家科学基金会;
关键词
MOLAL THERMODYNAMIC PROPERTIES; HOSTED HYDROTHERMAL SYSTEMS; VENT FLUIDS; TRANSPORT-PROPERTIES; CHEMICAL DIFFERENCES; OCEANIC PERIDOTITES; ULTRAMAFIC ROCKS; HIGH-PRESSURES; SEA-FLOOR; MINERALS;
D O I
10.1016/j.gca.2009.08.021
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
Aqueous dihydrogen (H-2,aq) is produced in copious amounts when seawater interacts with peridotite and H2O oxidizes ferrous iron in olivine to ferric iron in secondary magnetite and serpentine. Poorly understood in this process is the partitioning of iron and its oxidation state in serpentine, although both impose an important control on dihydrogen production. We present results of detailed petrographic, mineral chemical, magnetic and Mossbauer analyses of partially to fully serpentinized peridotites from the Ocean Drilling Program (ODP) Leg 209, Mid-Atlantic Ridge ( MAR) 15 degrees N area. These results are used to constrain the fate of iron during serpentinization and are compared with phase equilibria considerations and peridotite-seawater reaction path models. In samples from Hole 1274A, mesh-rims reveal a distinct in-to-out zoning from brucite at the interface with primary olivine, followed by a zone of serpentine + brucite +/- magnetite and finally serpentine + magnetite in the outermost mesh-rim. The compositions of coexisting serpentine (Mg# 95) and brucite ( Mg# 80) vary little throughout the core. About 30-50% of the iron in serpentine/brucite mesh-rims is trivalent, irrespective of subbasement depth and protolith (harzburgite versus dunite). Model calculations suggest that both partitioning and oxidation state of iron are very sensitive to temperature and water-to-rock ratio during serpentinization. At temperatures above 330 degrees C the dissolution of olivine and coeval formation of serpentine, magnetite and dihydrogen depends on the availability of an external silica source. At these temperatures the extent of olivine serpentinization is insufficient to produce much hydrogen, hence conditions are not reducing enough to form awaruite. At T < 330 degrees C, hydrogen generation is facilitated by the formation of brucite, as dissolution of olivine to form serpentine, magnetite and brucite requires no addition of silica. The model calculations suggest that the iron distribution observed in serpentine and brucite is consistent with formation temperatures ranging from <150 to 250 degrees C and bulk water-to-rock ratios between 0.1 and 5. These conditions coincide with peak hydrogen fugacities during serpentinization and are conducive to awaruite formation during main stage serpentinization. The development of the common brucite rims around olivine is either due to an arrested reaction olivine --> brucite --> serpentine + brucite, or reflects metastable olivine-brucite equilibria developing in the strong gradient in silica activity between orthopyroxene ( talc-serpentine) and olivine (serpentine-brucite). (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:6868 / 6893
页数:26
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