Active coupled carbon-silicon cycling in the sediments of the ocean's deepest realm
ID:145 View Protection:ATTENDEE Updated Time:2025-05-21 16:49:58 Hits:190 Oral Presentation

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Abstract
Hadal trenches (>6,000 m water depth) have been revealed as hotspots of organic carbon burial and microbial respiration in the ultra-deep ocean environment. However, an understanding of the anaerobic metabolic pathways and rates, as well as carbon-silicon cycling in the hadal trench sediments remains very fragmentary because of the shallow nature of traditional coring penetration. Using materials collected during IODP Expedition 386 in the Japan Trench and a reaction-transport model, we provide a regional quantitative assessment of organic carbon turnover by sulfate reduction, anaerobic oxidation of methane, methanogenesis, in addition to silicate weathering and authigenic carbonate and clay formation. We show that rapid burial of relatively labile organic carbon resulting from subduction earthquakes triggers organic carbon and methane turnover at rates comparable to those in continental margin sediments, thereby stimulating active silicate weathering and authigenic carbonate formation. Despite vigorous organic carbon turnover, the vast majority of organic carbon has been buried, implying the important role of tectonic associated events in translocating and preserving organic carbon in the deepest part of the ocean. These results demonstrate, for the first time, active coupled carbon-silicon cycling in the hadal trench sediments, which has implications for the subduction zone carbon budget and ocean deep biosphere.

Hadal trenches (>6,000 m water depth) have been revealed as hotspots of organic carbon burial and microbial respiration in the ultra-deep ocean environment. However, an understanding of the anaerobic metabolic pathways and rates, as well as carbon-silicon cycling in the hadal trench sediments remains very fragmentary because of the shallow nature of traditional coring penetration. Using materials collected during IODP Expedition 386 in the Japan Trench and a reaction-transport model, we provide a regional quantitative assessment of organic carbon turnover by sulfate reduction, anaerobic oxidation of methane, methanogenesis, in addition to silicate weathering and authigenic carbonate and clay formation. We show that rapid burial of relatively labile organic carbon resulting from subduction earthquakes triggers organic carbon and methane turnover at rates comparable to those in continental margin sediments, thereby stimulating active silicate weathering and authigenic carbonate formation. Despite vigorous organic carbon turnover, the vast majority of organic carbon has been buried, implying the important role of tectonic associated events in translocating and preserving organic carbon in the deepest part of the ocean. These results demonstrate, for the first time, active coupled carbon-silicon cycling in the hadal trench sediments, which has implications for the subduction zone carbon budget and ocean deep biosphere.
Keywords
Hadal trench;,silicate weathering,organic carbon degradation
Speaker
Min Luo
Professor Shanghai Ocean University

Submission Author
Min Luo Shanghai Ocean University
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Important Date
  • Conference Date

    Jun 10

    2025

    to

    Jun 13

    2025

  • Apr 15 2025

    Draft paper submission deadline

Sponsored By
National Natural Science Foundation of China
Geobiology Society
National Committee of Stratigraphy of China
Ministry of Science and Technology
Geological Society of China
Paleontological Society of China
Nanjing Institute of Geology and Palaeontology, Chinese Academy of Sciences (CAS)
Institute of Vertebrate Paleontology and Paleoanthropology, CAS
International Commission on Stratigraphy
International Paleontological Association
Organized By
State Key Laboratory of Biogeology and Environmental Geology, China University of Geosciences (CUG, Wuhan)
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