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微生物燃料电池及其电化生物膜。

Microbial fuel cells and their electrified biofilms.

作者信息

Greenman John, Gajda Iwona, You Jiseon, Mendis Buddhi Arjuna, Obata Oluwatosin, Pasternak Grzegorz, Ieropoulos Ioannis

机构信息

Bristol BioEnergy Centre, BRL, University of the West of England, Frenchay Campus, BS16 1QY, UK.

Wroclaw University of Science and Technology, Poland.

出版信息

Biofilm. 2021 Sep 20;3:100057. doi: 10.1016/j.bioflm.2021.100057. eCollection 2021 Dec.

Abstract

Bioelectrochemical systems (BES) represent a wide range of different biofilm-based bioreactors that includes microbial fuel cells (MFCs), microbial electrolysis cells (MECs) and microbial desalination cells (MDCs). The first described bioelectrical bioreactor is the Microbial Fuel Cell and with the exception of MDCs, it is the only type of BES that actually produces harvestable amounts of electricity, rather than requiring an electrical input to function. For these reasons, this review article, with previously unpublished supporting data, focusses primarily on MFCs. Of relevance is the architecture of these bioreactors, the type of membrane they employ (if any) for separating the chambers along with the size, as well as the geometry and material composition of the electrodes which support biofilms. Finally, the structure, properties and growth rate of the microbial biofilms colonising anodic electrodes, are of critical importance for rendering these devices, functional living 'engines' for a wide range of applications.

摘要

生物电化学系统(BES)涵盖了多种不同的基于生物膜的生物反应器,包括微生物燃料电池(MFC)、微生物电解池(MEC)和微生物脱盐池(MDC)。最早描述的生物电生物反应器是微生物燃料电池,除了微生物脱盐池外,它是唯一一种实际能产生可收获电量的生物电化学系统类型,而不是需要电输入来运行。基于这些原因,这篇带有此前未发表支持数据的综述文章主要聚焦于微生物燃料电池。这些生物反应器的架构、用于分隔腔室的膜类型(如果有的话)、膜的尺寸,以及支撑生物膜的电极的几何形状和材料组成都具有相关性。最后,在阳极电极上定殖的微生物生物膜的结构、特性和生长速率,对于使这些装置成为适用于广泛应用的功能性活体“引擎”至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db36/8543385/faea72e8d395/gr1.jpg

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