Matches in SemOpenAlex for { <https://semopenalex.org/work/W2077351432> ?p ?o ?g. }
- W2077351432 endingPage "164" @default.
- W2077351432 startingPage "152" @default.
- W2077351432 abstract "The multiple sulfur isotope composition of porewater sulfate from the anoxic marine sapropel of Mangrove Lake, Bermuda was measured in order to establish how multiple sulfur isotopes are fractionated during reoxidative sulfur cycling. The porewater-sulfate δ34S and Δ33S dataset exhibits the distinct isotopic signatures of microbial sulfate reduction and sulfur reoxidation. We reproduced the measurements with a simple diagenetic model that yielded fractionation factors for net sulfate removal of between −29.2‰ and −32.5‰. A new approach to isotopic modeling of the sulfate profiles, informed by the chemistry of sulfur intermediate compounds in Mangrove Lake, reveals that sulfate reduction produces a relatively small intrinsic fractionation and that an active reoxidative sulfur cycle increases the fractionation of the measured values. Based on the model results, the reoxidative cycle of Mangrove Lake appears to include sulfide oxidation to elemental sulfur followed by the disproportionation of the elemental sulfur to sulfate and sulfide. This model also indicates that the reoxidative sulfur cycle of Mangrove Lake turns over from 50 to 80% of the sulfide produced by microbial sulfate reduction. The Mangrove Lake case study shows how sulfur isotope fractionations can be separated into three different “domains” in Δ33S–δ34S space based on their ability to resolve reductive and reoxidative sulfur transformations. The first domain that differentiates reductive and reoxidative sulfur cycling is well illustrated by previous studies and requires 34S–32S fractionations more negative than ≈−70‰, beyond the fractionation limit of microbial sulfate reduction at earth surface temperatures. The second domain that distinguishes reductive and reoxidative processes is between 34S–32S fractionations of −40‰ and 0‰, where the 33S–32S fractionations of sulfate reduction and reoxidation are significantly different. In the remaining domain (between 34S–32S fractionations −70‰ and −40‰), the similarity of the multiple sulfur isotope signals from microbial sulfate reduction and disproportionation means that the two processes cannot be discriminated from each other." @default.
- W2077351432 created "2016-06-24" @default.
- W2077351432 creator A5016711912 @default.
- W2077351432 creator A5019638737 @default.
- W2077351432 creator A5019727889 @default.
- W2077351432 creator A5020108740 @default.
- W2077351432 creator A5044808672 @default.
- W2077351432 creator A5047137468 @default.
- W2077351432 date "2015-01-01" @default.
- W2077351432 modified "2023-09-30" @default.
- W2077351432 title "Mass-dependent sulfur isotope fractionation during reoxidative sulfur cycling: A case study from Mangrove Lake, Bermuda" @default.
- W2077351432 cites W1489050717 @default.
- W2077351432 cites W1771920109 @default.
- W2077351432 cites W1969353318 @default.
- W2077351432 cites W1973900162 @default.
- W2077351432 cites W1975275309 @default.
- W2077351432 cites W1975278947 @default.
- W2077351432 cites W1975672886 @default.
- W2077351432 cites W1976925845 @default.
- W2077351432 cites W1978103525 @default.
- W2077351432 cites W1987336311 @default.
- W2077351432 cites W1989698825 @default.
- W2077351432 cites W1990174891 @default.
- W2077351432 cites W1990611318 @default.
- W2077351432 cites W1991917468 @default.
- W2077351432 cites W1996766054 @default.
- W2077351432 cites W1997419504 @default.
- W2077351432 cites W1999607411 @default.
- W2077351432 cites W2004492492 @default.
- W2077351432 cites W2006895540 @default.
- W2077351432 cites W2013172549 @default.
- W2077351432 cites W2019683354 @default.
- W2077351432 cites W2023468455 @default.
- W2077351432 cites W2024883299 @default.
- W2077351432 cites W2025037466 @default.
- W2077351432 cites W2030634559 @default.
- W2077351432 cites W2031521753 @default.
- W2077351432 cites W2043024813 @default.
- W2077351432 cites W2045047668 @default.
- W2077351432 cites W2048980980 @default.
- W2077351432 cites W2053375589 @default.
- W2077351432 cites W2054380694 @default.
- W2077351432 cites W2056474046 @default.
- W2077351432 cites W2057770178 @default.
- W2077351432 cites W2059781486 @default.
- W2077351432 cites W2060617303 @default.
- W2077351432 cites W2062913984 @default.
- W2077351432 cites W2065445841 @default.
- W2077351432 cites W2065851111 @default.
- W2077351432 cites W2076077393 @default.
- W2077351432 cites W2077384023 @default.
- W2077351432 cites W2077854530 @default.
- W2077351432 cites W2081006387 @default.
- W2077351432 cites W2081383679 @default.
- W2077351432 cites W2083611679 @default.
- W2077351432 cites W2091312057 @default.
- W2077351432 cites W2095242207 @default.
- W2077351432 cites W2095816456 @default.
- W2077351432 cites W2102176443 @default.
- W2077351432 cites W2107286827 @default.
- W2077351432 cites W2109103681 @default.
- W2077351432 cites W2109978029 @default.
- W2077351432 cites W2110816433 @default.
- W2077351432 cites W2112735264 @default.
- W2077351432 cites W2113551183 @default.
- W2077351432 cites W2115491599 @default.
- W2077351432 cites W2117185933 @default.
- W2077351432 cites W2136996796 @default.
- W2077351432 cites W2137470123 @default.
- W2077351432 cites W2140511045 @default.
- W2077351432 cites W2141493813 @default.
- W2077351432 cites W2145769971 @default.
- W2077351432 cites W2151848276 @default.
- W2077351432 cites W2154959298 @default.
- W2077351432 cites W2330702297 @default.
- W2077351432 doi "https://doi.org/10.1016/j.gca.2014.11.007" @default.
- W2077351432 hasPublicationYear "2015" @default.
- W2077351432 type Work @default.
- W2077351432 sameAs 2077351432 @default.
- W2077351432 citedByCount "53" @default.
- W2077351432 countsByYear W20773514322015 @default.
- W2077351432 countsByYear W20773514322016 @default.
- W2077351432 countsByYear W20773514322017 @default.
- W2077351432 countsByYear W20773514322018 @default.
- W2077351432 countsByYear W20773514322019 @default.
- W2077351432 countsByYear W20773514322020 @default.
- W2077351432 countsByYear W20773514322021 @default.
- W2077351432 countsByYear W20773514322022 @default.
- W2077351432 countsByYear W20773514322023 @default.
- W2077351432 crossrefType "journal-article" @default.
- W2077351432 hasAuthorship W2077351432A5016711912 @default.
- W2077351432 hasAuthorship W2077351432A5019638737 @default.
- W2077351432 hasAuthorship W2077351432A5019727889 @default.
- W2077351432 hasAuthorship W2077351432A5020108740 @default.
- W2077351432 hasAuthorship W2077351432A5044808672 @default.
- W2077351432 hasAuthorship W2077351432A5047137468 @default.
- W2077351432 hasConcept C107872376 @default.
- W2077351432 hasConcept C127313418 @default.