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Department of Energy Science and Engineering
Light, Salts and Water Research Group
1. Journal Articles
Electron transfer interpretation of the biofilm-coated anode of a microbial fuel cell and the cathode modification effects on its power
Yang, Yamin
;
Choi, Chansoo
;
Xie, Guorong
;
Park, Jong-Deok
;
Ke, Shao
;
Yu, Jong-Sung
;
Zhou, Juanjuan
;
Lim, Bongsu
Department of Energy Science and Engineering
Light, Salts and Water Research Group
1. Journal Articles
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Title
Electron transfer interpretation of the biofilm-coated anode of a microbial fuel cell and the cathode modification effects on its power
DGIST Authors
Yu, Jong-Sung
Issued Date
2019-06
Citation
Yang, Yamin. (2019-06). Electron transfer interpretation of the biofilm-coated anode of a microbial fuel cell and the cathode modification effects on its power. doi: 10.1016/j.bioelechem.2019.02.004
Type
Article
Article Type
Article
Author Keywords
Biofilm-coated electrodes
;
Extracellular electron transfer
;
Marcus theory
;
Mesoporous carbon-modified cathode
;
Microbial fuel cell
Keywords
Anodes
;
Bacteria
;
Biofilms
;
Carbon
;
Carbon films
;
Cathodes
;
Coated fuel particles
;
Coated wire electrodes
;
Electric welding
;
Electron transitions
;
Fuel cells
;
Mesoporous materials
;
Carbon-cloth electrodes
;
Coated electrodes
;
Extracellular electron transfer
;
Flavin mono nucleotides (FMN)
;
Marcus theory
;
Mesoporous carbon
;
Nicotinamide adenine dinucleotides
;
Ordered mesoporous carbon
;
Microbial fuel cells
ISSN
1567-5394
Abstract
Biofilm-coated electrodes and outer cell membrane-mimicked electrodes were examined to verify an extracellular electron transfer mechanism using Marcus theory for a donor–acceptor electron transfer. Redox couple-bound membrane electrodes were prepared by impregnating redox coenzymes into Nafion films on carbon cloth electrodes. The electron transfer was believed to occur sequentially from acetate to nicotinamide adenine dinucleotide (NAD), c-type cytochrome, flavin mononucleotide (FMN) (or riboflavin (RBF)) and the anode substrate. Excellent polarisation and power density characteristics were contributed by the modification of the cathode with a high-surface-area ordered mesoporous carbon or a hollow core–mesoporous shell carbon. The maximum power density of the microbial fuel cell (MFC) could be improved by a factor of two mainly due to the accelerated electron consumption by modifying the cathode surfaces within three-dimensionally interconnected mesoporous carbon particles, and the anode was coated with a mixed culture of anaerobic bacteria. © 2019
URI
http://hdl.handle.net/20.500.11750/9782
DOI
10.1016/j.bioelechem.2019.02.004
Publisher
Elsevier BV
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Yu, Jong-Sung
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Department of Energy Science and Engineering
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