Microbial Sulfate Reduction and Its Role in Carbon Sequestration in Marine Sediments

Xiting Liu, Houjie Wang, Jiarui Liu, Guang-Chao Zhuang

Journal of Earth Science ›› 2024, Vol. 35 ›› Issue (4) : 1378-1381. DOI: 10.1007/s12583-024-1998-4
Viewpoint

Microbial Sulfate Reduction and Its Role in Carbon Sequestration in Marine Sediments

Author information +
History +

Cite this article

Download citation ▾
Xiting Liu, Houjie Wang, Jiarui Liu, Guang-Chao Zhuang. Microbial Sulfate Reduction and Its Role in Carbon Sequestration in Marine Sediments. Journal of Earth Science, 2024, 35(4): 1378‒1381 https://doi.org/10.1007/s12583-024-1998-4

References

[]
Akam S A, Swanner E D, Yao H M, et al.. Methane-Derived Authigenic Carbonates—A Case for a Globally Relevant Marine Carbonate Factory. Earth-Science Reviews, 2023, 243: 104487,
CrossRef Google scholar
[]
Bradbury H J, Turchyn A V. Reevaluating the Carbon Sink Due to Sedimentary Carbonate Formation in Modern Marine Sediments. Earth and Planetary Science Letters, 2019, 519: 40-49,
CrossRef Google scholar
[]
Cen Y, Wang J S, Ding X, et al.. Tracing the Methane Events by Stable Carbon Isotopes of Benthic Foraminifera at Glacial Periods in the Andaman Sea. Journal of Earth Science, 2022, 33(6): 1571-1582,
CrossRef Google scholar
[]
Chang X, Liu X T, Li T G, et al.. Late Quaternary Marine Transgressions off the Shandong Peninsula Inferred from Paleosalinity Indicators: Implications for Holocene Mud Wedge Formation. Chemical Geology, 2024, 658: 122117,
CrossRef Google scholar
[]
Egger M, Riedinger N, Mogollón J M, et al.. Global Diffusive Fluxes of Methane in Marine Sediments. Nature Geoscience, 2018, 11(6): 421-425,
CrossRef Google scholar
[]
Feng D, Peng Y B, Bao H M, et al.. A Carbonate-Based Proxy for Sulfate-Driven Anaerobic Oxidation of Methane. Geology, 2016, 44(12): 999-1002,
CrossRef Google scholar
[]
Hu Y, Luo M, Peckmann J, et al.. Quantifying the Extent of Authigenic Carbonate Formation in Shallow Marine Sediments through a Correlation between Carbonate Precipitation Rate and Sulfate Flux. Geophysical Research Letters, 2023, 50(19): e2023GL104296,
CrossRef Google scholar
[]
Jiao N Z, Zhu C B, Liu J H, et al.. A Roadmap for Ocean Negative Carbon Emission Eco-Engineering in Sea-Farming Fields. The Innovation Geoscience, 2023, 1(2): 100029,
CrossRef Google scholar
[]
Jørgensen B B. Sulfur Biogeochemical Cycle of Marine Sediments. Geochemical Perspectives, 2021, 10(2): 145-307,
CrossRef Google scholar
[]
Lin Z Y, Sun X M, Strauss H, et al.. Multiple Sulfur Isotope Constraints on Sulfate-Driven Anaerobic Oxidation of Methane: Evidence from Authigenic Pyrite in Seepage Areas of the South China Sea. Geochimica et Cosmochimica Acta, 2017, 211: 153-173,
CrossRef Google scholar
[]
Liu X T, Fike D, Li A C, et al.. Pyrite Sulfur Isotopes Constrained by Sedimentation Rates: Evidence from Sediments on the East China Sea Inner Shelf since the Late Pleistocene. Chemical Geology, 2019, 505: 66-75,
CrossRef Google scholar
[]
Loyd S J, Smirnoff M N. Progressive Formation of Authigenic Carbonate with Depth in Siliciclastic Marine Sediments Including Substantial Formation in Sediments Experiencing Methanogenesis. Chemical Geology, 2022, 594: 120775,
CrossRef Google scholar
[]
Miao X M, Liu X T, Li Q, et al.. Porewater Geochemistry Indicates Methane Seepage in the Okinawa Trough and Its Implications for the Carbon Cycle of the Subtropical West Pacific. Palaeogeography, Palaeoclimatology, Palaeoecology, 2022, 607: 111266,
CrossRef Google scholar
[]
Peng X T, Guo Z X, Chen S, et al.. Formation of Carbonate Pipes in the Northern Okinawa Trough Linked to Strong Sulfate Exhaustion and Iron Supply. Geochimica et Cosmochimica Acta, 2017, 205: 1-13,
CrossRef Google scholar
[]
Raven M R, Keil R G, Webb S M. Microbial Sulfate Reduction and Organic Sulfur Formation in Sinking Marine Particles. Science, 2021, 371(6525): 178-181,
CrossRef Google scholar
[]
Schrag D P, Higgins J A, MacDonald F A, et al.. Authigenic Carbonate and the History of the Global Carbon Cycle. Science, 2013, 339(6119): 540-543,
CrossRef Google scholar
[]
Sun J. How Many Pathways We Have for the Marine Carbon Neutrality. Journal of Earth Science, 2023, 34(5): 1621-1623,
CrossRef Google scholar
[]
Sun X L, Turchyn A V. Significant Contribution of Authigenic Carbonate to Marine Carbon Burial. Nature Geoscience, 2014, 7(3): 201-204,
CrossRef Google scholar
[]
Xiao X, Luo M, Zhang C W, et al.. Metal-Driven Anaerobic Oxidation of Methane as an Important Methane Sink in Methanic Cold Seep Sediments. Microbiology Spectrum, 2023, 11(2): e0533722,
CrossRef Google scholar
[]
Zhang C L, Shi T, Liu J H, et al.. Eco-Engineering Approaches for Ocean Negative Carbon Emission. Science Bulletin, 2022, 67(24): 2564-2573,
CrossRef Google scholar

Accesses

Citations

Detail

Sections
Recommended

/