Sulfur isotope rations in oceanic basement samples


Autoria(s): Ono, Shuhei; Keller, Nicole S; Rouxel, Olivier J; Alt, Jeffrey C
Cobertura

MEDIAN LATITUDE: 28.617243 * MEDIAN LONGITUDE: -116.015568 * SOUTH-BOUND LATITUDE: 9.480670 * WEST-BOUND LONGITUDE: -127.763767 * NORTH-BOUND LATITUDE: 47.753817 * EAST-BOUND LONGITUDE: -104.267370 * DATE/TIME START: 2004-11-18T00:00:00 * DATE/TIME END: 2004-11-18T00:00:00

Data(s)

03/06/2013

Resumo

Low temperature alteration of oceanic basement rocks is characterized by net gain of sulfur, which commonly yields low d34S values, suggesting involvement of microbial sulfate reduction. In order to test whether secondary sulfide minerals are consistent with a biogenic source, we apply high precision multiple sulfur isotope analysis to bulk rock sulfide and pyrite isolates from two contrasting types of altered oceanic basement rocks, namely serpentinized peridotites and altered basalts. Samples from two peridotite sites (Iberian Margin and Hess Deep) and from a basalt site on the eastern flank of the Juan de Fuca Ridge yield overlapping d34S values ranging from 0 per mil to -44 per mil. In contrast, sulfides in the basalt site are characterized by relatively low D33S values ranging from -0.06 per mil to 0.04 per mil, compared to those from peridotite sites (0.00 per mil to 0.16 per mil). The observed D33S signal is significant considering the analytical precision of 0.014 per mil (2 sigma). We present a batch reaction model that uses observed d34S and D33S relationships to quantify the effect of closed system processes and constrain the isotope enrichment factor intrinsic to sulfate reduction. The estimated enrichment factors as large as 61 per mil and 53 per mil, for peridotite and basalt sites respectively, suggest the involvement of microbial sulfate reduction. The relatively high D33S values in the peridotite sites are due to sulfate reduction in a closed system environment, whereas negative D33S values in the basalt site reflect open system sulfate reduction. A larger extent of sulfate reduction during alteration of peridotite to serpentinite is consistent with its higher H2 production capacity compared to basalt alteration, and further supports in-situ microbial sulfate reduction coupled with H2 production during serpentinization reactions.

Formato

application/zip, 2 datasets

Identificador

https://doi.pangaea.de/10.1594/PANGAEA.815110

doi:10.1594/PANGAEA.815110

Idioma(s)

en

Publicador

PANGAEA

Direitos

CC-BY: Creative Commons Attribution 3.0 Unported

Access constraints: unrestricted

Fonte

Supplement to: Ono, Shuhei; Keller, Nicole S; Rouxel, Olivier J; Alt, Jeffrey C (2012): Sulfur-33 constraints on the origin of secondary pyrite in altered oceanic basement. Geochimica et Cosmochimica Acta, 87, 323-340, doi:10.1016/j.gca.2012.04.016

Palavras-Chave #Comment; d34S; Dd33S; Dd36S; delta 34S; Delta delta 33S; Delta delta 36S; Depth; DEPTH, sediment/rock; Extract; extraction; Integrated Ocean Drilling Program / International Ocean Discovery Program; IODP; Label; Method; Method comment; ODP sample designation; S; Samp com; Sample code/label; Sample comment; Sample mass; Samp m; Sulfur, total
Tipo

Dataset