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Mitigation of the effect of catholyte contamination in microbial fuel cells using a wicking air cathode

机译:使用芯吸式空气阴极减轻微生物燃料电池中阴极电解液污染的影响

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Cathode design greatly affects microbial fuel cell (MFC) performance. Cathode contamination is inevitable in a single-chamber MFC yet it is impossible to study the magnitude of this effect in the single-chambered format. Therefore to study the effect of contamination at the cathode two-chamber MFCs must be used. The advantages of the two-chamber MFC design used in this study include: the assembled and filled fuel cell is autoclavable and the cathode can easily be moved from the submerged to air exposed position while maintaining sterility. This study was performed with the cathode in two positions: completely submerged in the catholyte and raised to a point where wicking action was used to coat the cathode with catholyte. When the cathode was submerged and the catholyte was inoculated with Bacillus megaterium, Shewanella oneidensis or Escherichia coli current generation was greatly decreased as compared to sterile. When the cathodes were raised, allowing contact with the catholyte by wicking, the current rose to levels comparable with sterile cathode MFCs. The reduced performance of submerged cathodes is most likely due to the microbial culture in the cathode greatly reducing the available oxygen for completion of the cathode reaction. This shows simple designs with low-cost materials can be used to mitigate effects of cathode contamination. Published by Elsevier B.V.
机译:阴极设计极大地影响了微生物燃料电池(MFC)的性能。在单腔MFC中,阴极污染是不可避免的,但不可能以单腔形式研究这种影响的程度。因此,必须使用阴极两室MFC来研究污染的影响。本研究中使用的两室MFC设计的优点包括:组装和填充的燃料电池可高温高压灭菌,并且在保持无菌性的同时,可以轻松地将阴极从浸没位置移动到暴露于空气的位置。这项研究是在两个位置的阴极上进行的:完全浸没在阴极电解液中,并升高到利用芯吸作用用阴极电解液覆盖阴极的程度。当阴极浸没并用巨大芽孢杆菌接种阴极液时,与无菌菌相比,大果希瓦氏菌或大肠埃希氏菌的发电量大大减少。当阴极升高时,允许通过芯吸作用与阴极电解液接触,电流上升到与无菌阴极MFC相当的水平。浸没式阴极的性能降低很可能是由于阴极中的微生物培养极大地减少了完成阴极反应所需的氧气。这表明采用低成本材料的简单设计可用于减轻阴极污染的影响。由Elsevier B.V.发布

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