JOURNAL OF POWER SOURCES | 卷:356 |
Separator electrode assembly (SEA) with 3-dimensional bioanode and removable air-cathode boosts microbial fuel cell performance | |
Article | |
Oliot, M.1  Etcheverry, L.1  Mosdale, A.2  Basseguy, R.1  Delia, M. -L.1  Bergel, A.1  | |
[1] Univ Toulouse INPT, CNRS, Lab Genie Chim, 4 Allee Emile Monso, F-31432 Toulouse, France | |
[2] PaxiTech SAS, 32 Rue Comboire, F-38130 Echirolles, France | |
关键词: Microbial anode; pH balance; Biofouling; Proteiniphilum; Power density; Bioelectrochemical system; | |
DOI : 10.1016/j.jpowsour.2017.03.016 | |
来源: Elsevier | |
【 摘 要 】
Separator electrode assemblies (SEAs) were designed by associating a microbial anode with an air cathode on each side of three different kinds of separator: plastic grid, J-cloth and baking paper. The SEA was designed to allow the air-cathode be removed and replaced without disturbing the bioanode. Power densities up to 6.4 W rn(-2) were produced by the Grid-SEAs (on average 5.9 +/- 0.5 W m(-2)) while JCloth-SEAs and Paper-SEAs produced 4.8 +/- 0.3 and 1.8 +/- 0.1 W m(-2) decreased with time mainly because of fast deterioration of the cathode kinetics. They always increased again when the air-cathodes were replaced by new ones; the Grid-SEAs were thus boosted above 4 W m(-2) after 7 weeks of operation. The theoretical analysis of SEA functioning suggested that the high performance of the Grid-SEAs was due to the combination of several virtuous phenomena: the efficient pH balance thanks to free diffusion through the large-mesh grid, the likely mitigation of oxygen crossover thanks to the 3-dimensional structure of the bioanode and the possibility of overcoming cathode fouling by replacing it during MFC operation. Finally, the microbial community of all bioanodes showed stringent selection of Proteiniphilum acetatigenes in proportion with the performance. (C) 2017 Elsevier B.V. All rights reserved.
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