Carbonation of mantle peridotite by CO2-rich fluids: the formation of listvenites in the Advocate ophiolite complex (Newfoundland, Canada)

被引:71
|
作者
Menzel, Manuel D. [1 ]
Garrido, Carlos J. [1 ]
Lopez Sanchez-Vizcaino, Vicente [2 ]
Marchesi, Claudio [1 ,3 ]
Hidas, Karoly [1 ]
Escayola, Monica P. [4 ]
Delgado Huertas, Antonio [1 ]
机构
[1] CSIC, UGR, IACT, Av Palmeras 4, Armilla 18100, Spain
[2] Univ Jaen, UGR, Escuela Politecn Super, CSIC,Unidad Asociada IACT,Dept Geol, Linares 23700, Spain
[3] Univ Granada, Fac Ciencias, Dept Mineral & Petrol, Ave Fuentenueva S-N, Granada 18002, Spain
[4] Univ Nacl Tierra Fuego, CONICET, Inst Ciencias Polares & Ambient, ICPA, Ushuaia, Argentina
关键词
CO2; sequestration; peridotite carbonation; listvenite; serpentinization; forearc; Advocate complex; BAIE-VERTE PENINSULA; CONSISTENT THERMODYNAMIC DATA; HYDROTHERMAL SYSTEM; MINERAL CARBONATION; STABLE-ISOTOPE; OCEANIC-CRUST; WESTERN ALPS; SERPENTINIZATION; CO2; GEOCHEMISTRY;
D O I
10.1016/j.lithos.2018.06.001
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
The mantle section of the Advocate ophiolite (Newfoundland, Canada) contains unique outcrops of listvenite (magnesite-quartz), antigorite- and quartz-bearing talc-magnesite rock, and carbonated antigorite-serpentinite. This lithological sequence records the sequential carbonation of serpentinite by CO2-rich hydro thermal fluids. High Cr and Ni contents and preservation of Cr-spinel with a composition similar to that of Atg-serpentinite (molar Mg/Mg + Fe = 0.50-0.65; Cr/Cr + Al = 0.50-0.70), show that the Advocate listvenite and talc-magnesite rocks formed by carbonation of variably serpentinized mantle harzburgite. Replacement of lizardite by magnesite coeval with the breakdown of lizardite to antigorite + brucite and the lack of prograde olivine and magnetite in antigorite serpentinite and talc-magnesite rocks constrain the temperature of carbonation between c. 280 degrees C and 420 degrees C. Thermodynamic modelling of carbonation of serpentinite at 300 degrees C and 0.2-0.5 GPa accounts for the sequence of carbonated rocks in the Advocate complex. Phase relations and petrological observations indicate that the aqueous aSiO(2) and aCO(2) of the infiltrating CO2-rich fluid were buffered at the Atg-Tlc-Mgs and Qtz-Tlc-Mgs pseudo-invariant points, forming dominantly three-phase rocks by variable extents of carbonation at these pseudo-invariant points. Listvenites formed at large fluid-rock ratio when quartz became saturated in the fluid and precipitated along magnesite grain boundaries and in variably sized tensional veins. The whole rock Fe3+/Fe-total ratio of the Advocate carbonate-bearing sequence decreases with increasing whole rock carbon content, from 0.65-0.80 in brucite-bearing antigorite serpentinite to 0.10-0.30 in talc-magnesite rocks and listvenite. The whole rock iron reduction is associated with an increase in the ferrous iron content of magnesite and the formation of hematite and goethite, indicating a concomitant increase of the fluid oxygen fugacity. The sequence of carbonation reactions is uniquely preserved in three main growth zones characteristic of listvenite magnesite: (i) an inner zone of magnetite -bearing, Fe-poor, Mn-bearing magnesite formed by carbonation of lizardite, brucite and olivine from Atg-serpentinite; (ii) an outer zone of Fe-rich magnesite formed by carbonation of antigorite and in equilibrium with Fe -poor talc; and (iii) an outermost rim of Fe-poor magnesite formed by carbonation of talc. We propose that carbonation of the Advocate serpentinized mantle harzburgite occurred in a supra-subduction upper plate ophiolite by fluxing of slab-derived, CO2-rich fluids channelled along deep faults at the onset of accretion of the forearc basin (c. 300 degrees C, <0.5 GPa). The rather constant delta O-18 (11.0-14.4 parts per thousand V-SMOW) and relatively low delta C-13 (-8.9 to 5.0 parts per thousand V-PDB) of magnesite throughout the sequence of carbonated rocks in the Advocate complex is consistent with CO2-rich fluids derived from decarbonation or dissolution of organic carbon- and carbonate-bearing meta-sediments, such as those occurring in the underlying Birchy complex the partially subducted continental margin of Laurentia. Carbonation of serpentinized oceanic or continental mantle lithosphere by reactive percolation of CO2-rich fluids derived from the slab in forearc settings may represent a significant carbon reservoir for the deep carbon cycle. (C) 2018 Elsevier B.V. All rights reserved.
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页码:238 / 261
页数:24
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