Application of bacterial biocathodes in microbial fuel cells

被引:412
作者
He, Zhen [1 ]
Angenent, Largus T. [1 ]
机构
[1] Washington Univ, Dept Energy Environm & Chem Engn, St Louis, MO 63130 USA
关键词
microbial fuel cell; biofuel cell; biocathode; potentiostat-poised half cell; terminal electron acceptor;
D O I
10.1002/elan.200603628
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
This review addresses the development and experimental progress of biocathodes in microbial fuel cells (MFCs). Conventional MFCs consist of biological anodes and abiotic cathodes. The abiotic cathode usually requires a catalyst or an electron mediator to achieve high electron transfer, increasing the cost and lowering the operational sustainability. Such disadvantages can be overcome by biocathodes, which use microorganisms to assist cathodic reactions. Biocathodes are feasible in potentiostat-poised half cells, but only very few studies have investigated them in complete MFCs. The classification of biocathodes is based on which terminal electron acceptor is available. For aerobic biocathodes with oxygen as the terminal electron acceptor, electron mediators, such as iron and manganese, are first reduced by the cathode (abiotically) and then reoxidized by bacteria. Anaerobic biocathodes directly reduce terminal electron acceptors, such as nitrate and sulfate, by accepting electrons from a cathode electrode through microbial metabolism. Biocathodes are promising in MFCs, and we anticipate a successful application after several breakthroughs are made.
引用
收藏
页码:2009 / 2015
页数:7
相关论文
共 80 条
[21]  
GOLDNER BH, 1963, DEV IND MICROBIOL, V4, P70
[22]   Electrically conductive bacterial nanowires produced by Shewanella oneidensis strain MR-1 and other microorganisms [J].
Gorby, Yuri A. ;
Yanina, Svetlana ;
McLean, Jeffrey S. ;
Rosso, Kevin M. ;
Moyles, Dianne ;
Dohnalkova, Alice ;
Beveridge, Terry J. ;
Chang, In Seop ;
Kim, Byung Hong ;
Kim, Kyung Shik ;
Culley, David E. ;
Reed, Samantha B. ;
Romine, Margaret F. ;
Saffarini, Daad A. ;
Hill, Eric A. ;
Shi, Liang ;
Elias, Dwayne A. ;
Kennedy, David W. ;
Pinchuk, Grigoriy ;
Watanabe, Kazuya ;
Ishii, Shun'ichi ;
Logan, Bruce ;
Nealson, Kenneth H. ;
Fredrickson, Jim K. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2006, 103 (30) :11358-11363
[23]   Remediation and recovery of uranium from contaminated subsurface environments with electrodes [J].
Gregory, KB ;
Lovley, DR .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2005, 39 (22) :8943-8947
[24]   Graphite electrodes as electron donors for anaerobic respiration [J].
Gregory, KB ;
Bond, DR ;
Lovley, DR .
ENVIRONMENTAL MICROBIOLOGY, 2004, 6 (06) :596-604
[25]  
HABERMANN W, 1991, APPL MICROBIOL BIOT, V35, P128, DOI 10.1007/BF00180650
[26]   Sea-water battery for subsea control systems [J].
Hasvold, O ;
Henriksen, H ;
Melvaer, E ;
Citi, G ;
Johansen, BO ;
Kjonigsen, T ;
Galetti, R .
JOURNAL OF POWER SOURCES, 1997, 65 (1-2) :253-261
[27]   Electricity generation from artificial wastewater using an upflow microbial fuel cell [J].
He, Z ;
Minteer, SD ;
Angenent, LT .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2005, 39 (14) :5262-5267
[28]   An upflow microbial fuel cell with an interior cathode: Assessment of the internal resistance by impedance Spectroscopy [J].
He, Zhen ;
Wagner, Norbert ;
Minteer, Shelley D. ;
Angenent, Largus T. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2006, 40 (17) :5212-5217
[29]   Microbial communities associated with electrodes harvesting electricity from a variety of aquatic sediments [J].
Holmes, DE ;
Bond, DR ;
O'Neill, RA ;
Reimers, CE ;
Tender, LR ;
Lovley, DR .
MICROBIAL ECOLOGY, 2004, 48 (02) :178-190
[30]  
Katz E., 2003, HDB FUEL CELLS FUNDA