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.

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, . 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, . 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, . 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, . 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, . 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, . 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, . 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, . 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, . 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, . 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, . 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, . 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, . 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, . Eco-Engineering Approaches for Ocean Negative Carbon Emission. Science Bulletin, 2022, 67(24): 2564-2573.
CrossRef Google scholar

Accesses

Citations

Detail

Sections
Recommended

/