Microbial fingerprints of methanation in a hybrid electric-biological anaerobic digestion

沼气 厌氧消化 产甲烷 可再生能源 生化工程 微生物燃料电池 环境科学 生物反应器 无氧呼吸 甲烷 制浆造纸工业 发电 无氧运动 废物管理 化学 生态学 工程类 生物 功率(物理) 生理学 有机化学 物理 量子力学
作者
Bo Wang,Wenzong Liu,Bin Liang,Jian‐Dong Jiang,Aijie Wang
出处
期刊:Water Research [Elsevier BV]
卷期号:226: 119270-119270 被引量:40
标识
DOI:10.1016/j.watres.2022.119270
摘要

Biomethane as a sustainable, alternative, and carbon-neutral renewable energy source to fossil fuels is highly needed to alleviate the global energy crisis and climate change. The conventional anaerobic digestion (AD) process for biomethane production from waste(water) streams has been widely employed while struggling with a low production rate, low biogas qualities, and frequent instability. The electric-biologically hybrid microbial electrochemical anaerobic digestion system (MEC-AD) prospects more stable and robust biomethane generation, which facilitates complex organic substrates degradation and mediates functional microbial populations by giving a small input power (commonly voltages < 1.0 V), mainly enhancing the communication between electroactive microorganisms and (electro)methanogens. Despite numerous bioreactor tests and studies that have been conducted, based on the MEC-AD systems, the integrated microbial fingerprints, and cooperation, accelerating substrate degradation, and biomethane production, have not been fully summarized. Herein, we present a comprehensive review of this novel developing biotechnology, beginning with the principles of MEC-AD. First, we examine the fundamentals, configurations, classifications, and influential factors of the whole system's performances (reactor types, applied voltages, temperatures, conductive materials, etc.,). Second, extracellular electron transfer either between diverse microbes or between microbes and electrodes for enhanced biomethane production are analyzed. Third, we further conclude (electro)methanogenesis, and microbial interactions, and construct ecological networks of microbial consortia in MEC-AD. Finally, future development and perspectives on MEC-AD for biomethane production are proposed.
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