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黄铁矿的深层非生物风化。

Deep abiotic weathering of pyrite.

机构信息

Department of Geosciences, The Pennsylvania State University, University Park, PA 16802, USA.

Instituto de Física, Universidade Federal Fluminense, Avenida Litorânea s/n, 24210-340 Niterói, RJ, Brazil.

出版信息

Science. 2020 Oct 23;370(6515). doi: 10.1126/science.abb8092.

Abstract

Pyrite is a ubiquitous iron sulfide mineral that is oxidized by trace oxygen. The mineral has been largely absent from global sediments since the rise in oxygen concentration in Earth's early atmosphere. We analyzed weathering in shale, the most common rock exposed at Earth's surface, with chemical and microscopic analysis. By looking across scales from 10 to 10 meters, we determined the factors that control pyrite oxidation. Under the atmosphere today, pyrite oxidation is rate-limited by diffusion of oxygen to the grain surface and regulated by large-scale erosion and clast-scale fracturing. We determined that neither iron- nor sulfur-oxidizing microorganisms control global pyrite weathering fluxes despite their ability to catalyze the reaction. This multiscale picture emphasizes that fracturing and erosion are as important as atmospheric oxygen in limiting pyrite reactivity over Earth's history.

摘要

黄铁矿是一种普遍存在的硫化亚铁矿物,会被痕量氧氧化。自从地球早期大气中氧气浓度升高以来,这种矿物在全球沉积物中已基本消失。我们通过化学和微观分析,对页岩(最常见的地表暴露岩石)进行了风化分析。通过从 10 米到 10 米的跨尺度观察,我们确定了控制黄铁矿氧化的因素。在当今大气中,黄铁矿氧化受氧气向颗粒表面扩散的限制,受大规模侵蚀和碎屑尺度断裂的调节。尽管铁和硫氧化微生物能够催化该反应,但我们确定它们并不控制全球黄铁矿风化通量。这种多尺度的情况强调了断裂和侵蚀与大气氧一样,在限制地球历史上黄铁矿的反应活性方面非常重要。

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