生化工程
生物转化
生产(经济)
原材料
可再生能源
化学工业
化石燃料
电
环境科学
工艺工程
化学
废物管理
环境工程
工程类
经济
有机化学
宏观经济学
电气工程
发酵
食品科学
作者
Nico J. Claassens,Charles A. R. Cotton,Dennis Kopljar,Arren Bar‐Even
出处
期刊:Nature Catalysis
[Springer Nature]
日期:2019-05-13
卷期号:2 (5): 437-447
被引量:225
标识
DOI:10.1038/s41929-019-0272-0
摘要
The integration of electrochemical and microbial processes offers a unique opportunity to displace fossil carbon with CO2 and renewable energy as the primary feedstocks for carbon-based chemicals. Yet, it is unclear which strategy for CO2 activation and electron transfer to microbes has the capacity to transform the chemical industry. Here, we systematically survey experimental data for microbial growth on compounds that can be produced electrochemically, either directly or indirectly. We show that only a few strategies can support efficient electromicrobial production, where formate and methanol seem the best electron mediators in terms of energetic efficiency of feedstock bioconversion under both anaerobic and aerobic conditions. We further show that direct attachment of microbes to the cathode is highly constrained due to an inherent discrepancy between the rates of the electrochemical and biological processes. Our quantitative perspective provides a data-driven roadmap towards an economically and environmentally viable realization of electromicrobial production. Electromicrobial production can replace fossil carbon with CO2 and electricity as feedstocks for chemical production. This work analyses and compares different electromicrobial production approaches, providing a data-driven roadmap for the sustainable and efficient implementation of this technology.
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