甲烷
动能
资源回收
化学
微生物燃料电池
电化学
化学能
废水
环境科学
微生物
产甲烷
生物量(生态学)
化学工程
材料科学
电子转移
电势能
工作(物理)
电磁感应
能量转换
厌氧消化
无氧呼吸
生物降解
能量回收
导电体
污水处理
生物反应器
环境化学
电极
可再生能源
作者
P Q Chen,Hemin Ma,Huige Xing,Jiaqi Wang,Jiawei Lu,Hancheng Lyu,Shuai Tang,Y ZHANG,Qiang Zhong,Weizhong Jiang,Chaoyuan Wang,Junting Pan,BX Ni,Xinkun Ren,Ming Xu,Buchun Si
标识
DOI:10.1021/acs.est.6c05455
摘要
Microbial aggregates in wastewater treatment systems generate substantial kinetic energy through their motion, which constitutes ubiquitous but untapped energy. Here, we demonstrate that this kinetic energy can be harvested and converted into bioavailable electrochemical potential to drive the microbial metabolism. In anaerobic reactors, aggregates moving perpendicular to a designed magnetic field generate an in situ electrical potential via electromagnetic induction through their conductive pili networks, thereby enabling the direct conversion of microbial motion into methane via metabolic energy capture. Integrated multi-omics, microbial community, and electrochemical analyses showed that the continuous conductive network formed between electroactive microorganisms and methanogens via e-pili was key to the conversion of kinetic energy into electrical potential through electromagnetic processes. The induced potential not only enhanced the electrochemical activity and conductivity of microbial aggregates but also stimulated respiratory electron transfer in electroactive microorganisms and activated energy-conserving electron bifurcation in methanogens. Energy, economic, and carbon footprint analyses showed that kinetic energy recovery increased net energy recovery by 226%, reduced greenhouse gas emissions by 25%, and improved economic returns. Our work establishes a direct pathway to convert microbial motion into biochemical energy, advancing sustainable resource recovery from wastewater.
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