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Simultaneous copper removal and electricity production and microbial community in microbial fuel cells with different cathode catalysts

机译:用不同阴极催化剂的微生物燃料电池同时铜去除和电力生产和微生物群落

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With graphene oxide (GO), platinum carbon (Pt/C), and reduced graphene oxide (rGO) as cathode catalysts, three types of single-chamber microbial fuel cells (MFCs) were constructed for simultaneous Cu2+ removal and electricity production. Results indicated rGO-MFC and Pt/C-MFC had much better Cu2+-removing and electricity-generating performance than that of GO-MFC, and rGO-MFC presented preferable electrochemical characteristics compared with Pt/C-MFC. Microbial community analysis indicated Geobacter dominated anodic biofilms and was mainly responsible for organics degradation and electricity generation. The dual bio-selective effects by cathode catalyst and toxic Cu2+ resulted in different cathodic microbial communities. At high Cu2+ contents, Nitratireductor, Ochrobactrum, and Serratia as efficient Cu2+-removing genera played key roles in Pt/C-MFC, and Azoarcus predominant in cathodic biofilms of rGO-MFC might be important contributor for the favorable performance in this case.
机译:用石墨烯(GO),铂碳(Pt / C)和作为阴极催化剂的还原氧化物(RGO),构建了三种类型的单室微生物燃料电池(MFC),用于同时Cu2 +去除和电力。 结果表明,RGO-MFC和Pt / C-MFC具有比Go-MFC的更好的Cu2 + - + - 发电性能,而Rgo-MFC与Pt / C-MFC相比,rgo-MFC呈现优选的电化学特性。 微生物群落分析表明Geobacter主导阳极生物膜,主要负责有机物降解和发电。 阴极催化剂和毒性Cu2 +的双生物选择性效果导致不同的阴极微生物群落。 在高Cu2 +内容物中,尼硝化剂,Ochrobactrum和Serratia,作为高效Cu2 + -Removing的属于Pt / C-MFC中的关键作用,RGO-MFC阴极生物膜中的氮杂血管占主导地位可能是在这种情况下有利性能的重要贡献者。

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