黄铁矿
硫黄
麦金纳维
多硫化物
自生的
催化作用
化学
硫化物
无机化学
非生物成分
硫化氢
化学工程
硫化铁
矿物学
地质学
物理化学
有机化学
电解质
古生物学
成岩作用
工程类
电极
作者
Charlotte M. van der Graaf,Javier Sánchez‐España,Andrey Ilin,Iñaki Yusta Arnal,Alfons J. M. Stams,Irene Sánchez‐Andrea
标识
DOI:10.1038/s41598-024-66006-z
摘要
Abstract Hydrogen sulfide (H 2 S) in environments with temperatures below 100 °C is generally assumed to be of microbial origin, while abiotic H 2 S production is typically restricted to higher temperatures (T). In this study, we report an abiotic process for sulfidogenesis through the reduction of elemental sulfur (S 0 ) by hydrogen (H 2 ), mediated by pyrite (FeS 2 ). The process was investigated in detail at pH 4 and 80 °C, but experimental conditions ranged between 40 and 80 °C and pH 4–6. The experiments were conducted with H 2 as reducing molecule, and µm-sized spherical (but not framboidal) pyrite particles that formed in situ from the H 2 S, S 0 and Fe 2+ present in the experiments. Fe monosulfides, likely mackinawite, were identified as potential pyrite precursors. The absence of H 2 production in controls, combined with geochemical modelling, suggests that pyrite formation occurred through the polysulfide pathway, which is unexpected under acidic conditions. Most spherical aggregates of authigenic pyrite were composed of nanometric, acicular crystals oriented in diverse directions, displaying varying degrees of organization. Although it was initially hypothesized that the catalytic properties were related to the surface structure, commercially sourced, milled pyrite particles (< 50 μm) mediated H 2 S production at comparable rates. This suggests that the catalytic properties of pyrite depend on particle size rather than surface structure, requiring pyrite surfaces to act as electron shuttles between S 0 and H 2 .
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