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Geochemistry of sediment cores GeoB13820-1 and GeoB13863-1 from the western South Atlantic@en

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DataONE2025-11-11 更新2026-05-19 收录
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Here, we present results from sediments collected in the Argentine Basin, a non-steady state depositional marine system characterized by abundant oxidized iron within methane-rich layers due to sediment reworking followed by rapid deposition. Our comprehensive inorganic data set shows that iron reduction in these sulfate and sulfide-depleted sediments is best explained by a microbially mediated process-implicating anaerobic oxidation of methane coupled to iron reduction (Fe-AOM) as the most likely major mechanism. Although important in many modern marine environments, iron-driven AOM may not consume similar amounts of methane compared with sulfate-dependent AOM. Nevertheless, it may have broad impact on the deep biosphere and dominate both iron and methane cycling in sulfate-lean marine settings. Fe-AOM might have been particularly relevant in the Archean ocean, >2.5 billion years ago, known for its production and accumulation of iron oxides (in iron formations) in a biosphere likely replete with methane but low in sulfate. Methane at that time was a critical greenhouse gas capable of sustaining a habitable climate under relatively low solar luminosity, and relationships to iron cycling may have impacted if not dominated methane loss from the biosphere.

本研究呈现了阿根廷盆地采集沉积物的分析结果。阿根廷盆地属于非稳态沉积海洋系统,因沉积物经再改造后快速沉积,其富甲烷层内富含氧化态铁。本研究的全面无机地球化学数据集显示,在这些硫酸盐与硫化物匮乏的沉积物中,铁还原过程最符合微生物介导的机制,即与铁还原偶联的甲烷厌氧氧化(Anaerobic Oxidation of Methane Coupled to Iron Reduction,Fe-AOM)为最可能的主要作用机制。尽管铁驱动的甲烷厌氧氧化在诸多现代海洋环境中具有重要意义,但其消耗的甲烷量或不及硫酸盐依赖型甲烷厌氧氧化。尽管如此,该过程仍可能对深部生物圈产生广泛影响,并在硫酸盐匮乏的海洋环境中主导铁与甲烷的生物地球化学循环。Fe-AOM或许在25亿年前的太古代海洋中尤为关键——彼时的生物圈以甲烷富集、硫酸盐匮乏为特征,同时伴随氧化铁(见于铁建造中)的生成与富集。当时甲烷作为关键温室气体,可在太阳光度相对较低的条件下维持宜居气候;而甲烷与铁循环的关联即便未完全主导生物圈的甲烷流失过程,也对该过程产生了重要影响。

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2026-04-23
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