微生物燃料电池
工艺工程
电化学能量转换
环境科学
生化工程
海水淡化
化学能
废水
发电
废物管理
纳米技术
环境工程
功率(物理)
膜
电化学
材料科学
电极
化学
工程类
物理
有机化学
物理化学
量子力学
生物化学
作者
Bruce E. Logan,Maxwell J. Wallack,Kyoung‐Yeol Kim,Weihua He,Yujie Feng,Pascal E. Saikaly
标识
DOI:10.1021/acs.estlett.5b00180
摘要
Different microbial electrochemical technologies are being developed for a many diverse applications, including wastewater treatment, biofuel production, water desalination, remote power sources, and as biosensors. Current and energy densities will always be limited relative to batteries and chemical fuel cells, but these technologies have other advantages based on the self-sustaining nature of the microorganisms that can donate or accept electrons from an electrode, the range of fuels that can be used, and versatility in the chemicals that can be produced. The high cost of membranes will likely limit applications of microbial electrochemical technologies that might require a membrane. For microbial fuel cells, which do not need a membrane, questions remain on whether larger-scale systems can produce power densities similar to those obtained in laboratory-scale systems. It is shown here that configuration and fuel (pure chemicals in laboratory media versus actual wastewaters) remain the key factors in power production, rather than the scale of the application. Systems must be scaled up through careful consideration of electrode spacing and packing per unit volume of reactor.
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