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Atmospheric oxygen regulation at low Proterozoic levels by incomplete oxidative weathering of sedimentary organic carbon

机译:通过沉积有机碳的不完全氧化风化,在低元古代水平下调节大气中的氧气

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It is unclear why atmospheric oxygen remained trapped at low levels for more than 1.5 billion years following the Paleoproterozoic Great Oxidation Event. Here, we use models for erosion, weathering and biogeochemical cycling to show that this can be explained by the tectonic recycling of previously accumulated sedimentary organic carbon, combined with the oxygen sensitivity of oxidative weathering. Our results indicate a strong negative feedback regime when atmospheric oxygen concentration is of order pO2~0.1 PAL (present atmospheric level), but that stability is lost at pO2 13C) record becomes insensitive to changes in organic carbon burial rate, due to counterbalancing changes in the weathering of isotopically light organic carbon. This can explain the lack of secular trend in the Precambrian δ13C record, and reopens the possibility that increased biological productivity and resultant organic carbon burial drove the Great Oxidation Event.
机译:目前尚不清楚为什么在古元古代大氧化事件之后,大气中的氧气被困在低水平超过15亿年。在这里,我们使用侵蚀,风化和生物地球化学循环的模型来表明,这可以用先前积累的沉积有机碳的构造再循环以及氧化风化的氧敏感性来解释。我们的结果表明,当大气中的氧气浓度为pO 2 〜0.1 PAL(当前大气水平)时,存在强烈的负反馈机制,但在pO 2 13 < / sup> C)记录对有机碳埋藏速率的变化不敏感,这是由于同位素轻有机碳的风化作用的平衡变化所致。这可以解释前寒武纪δ 13 C记录中缺乏长期趋势的现象,并重新提出增加生物生产力和由此产生的有机碳埋藏驱动大氧化事件的可能性。

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