化学
非闪锌矿
非生物成分
粘土矿物
蒙脱石
甲烷
环境化学
氧化还原
矿物
无机化学
有机质
沉积岩
铁
碳纤维
反应性(心理学)
矿物学
甲烷厌氧氧化
溶解有机碳
皂石
总有机碳
作者
Ying Yan,Jianlong Zou,H Wang,Menghan Yu,Huaming Yang
标识
DOI:10.1021/acs.est.6c04020
摘要
Methane (CH 4 ) plays a central role in the global carbon cycle, yet the contribution of abiotic processes to natural CH 4 emissions remains poorly constrained, particularly in iron-rich sedimentary environments. Here, we demonstrate that ubiquitous iron-rich clay minerals, including Fe 3+ -exchanged montmorillonite (Fe 3+ -MMT) and ferric nontronite (NAu), catalyze abiotic CH 4 formation from methylated organic substrates under environmentally relevant redox conditions. Both minerals enhance CH 4 formation relative to dissolved Fe 3+ but exhibit contrasting formation kinetics and product selectivity arising from differences in Fe coordination and mineral structure. Fe 3+ -MMT generates rapid CH 4 pulses through interlayer-confined redox cycling, whereas NAu supports slower yet sustained CH 4 formation through gradual activation of structural Fe. Spectroscopic analyses combined with density functional theory calculations reveal that mineral structure regulates Fe(IV)═O generation and stabilizes methyl radicals, thereby suppressing overoxidation. Compared with homogeneous Fe 3+ systems, clay-catalyzed reactions reduced CO/CO 2 formation by 42–62%. CH 4 yields are further modulated by pH, temperature, inorganic cations, and organic ligands. These findings identify iron-rich clays as mineralogical controls on abiotic CH 4 -forming pathways and highlight their potential role in sedimentary carbon cycling and methylated organic compound transformation.
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