Pyrogenic Carbon Promotes Anaerobic Oxidation of Methane Coupled with Iron Reduction via the Redox-Cycling Mechanism

化学 氧化还原 甲烷 甲烷厌氧氧化 电子转移 生物地球化学循环 碳纤维 环境化学 电子传输链 二氧化碳 无机化学 温室气体 化学工程 光化学 有机化学 生物化学 材料科学 生态学 生物 复合数 工程类 复合材料
作者
Xueqin Zhang,Mengying Xie,Chen Cai,Hesamoddin Rabiee,Zhiyao Wang,Bernardino Virdis,Gene W. Tyson,Simon Jon McIlroy,Zhiguo Yuan,Shihu Hu
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:57 (48): 19793-19804 被引量:17
标识
DOI:10.1021/acs.est.3c05907
摘要

Pyrogenic carbon (PC) can mediate electron transfer and thus catalyze biogeochemical processes to impact greenhouse gas (GHG) emissions. Here, we demonstrate that PC can contribute to mitigating GHG emissions by promoting the Fe(III)-dependent anaerobic oxidation of methane (AOM). It was found that the amendment PCs in microcosms dominated by Methanoperedenaceae performing Fe(III)-dependent AOM simultaneously promoted the rate of AOM and Fe(III) reduction with a consistent ratio close to the theoretical stoichiometry of 1:8. Further correlation analysis showed that the AOM rate was linearly correlated with the electron exchange capacity, but not the conductivity, of added PC materials, indicating the redox-cycling electron transfer mechanism to promote the Fe(III)-dependent AOM. The mass content of the C═O moiety from differentially treated PCs was well correlated with the AOM rate, suggesting that surface redox-active quinone groups on PCs contribute to facilitating Fe(III)-dependent AOM. Further microbial analyses indicate that PC likely shuttles direct electron transfer from Methanoperedenaceae to Fe(III) reduction. This study provides new insight into the climate-cooling impact of PCs, and our evaluation indicates that the PC-facilitated Fe(III)-dependent AOM could have a significant contribution to suppressing methane emissions from the world's reservoirs.
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