Understanding the degradation of Congo red and bacterial diversity in an air–cathode microbial fuel cell being evaluated for simultaneous azo dye removal from wastewater and bioelectricity generation
Understanding the degradation of Congo red and bacterial diversity in an air–cathode microbial fuel cell being evaluated for simultaneous azo dye removal from wastewater and bioelectricity generation
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DOI:
10.1007/s00253-012-4180-3
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发表时间:
2013-04
影响因子:
5
通讯作者:
Jian Sun;You-ming Li;Yongyou Hu;B. Hou;Yaping Zhang;Sizhe Li
中科院分区:
文献类型:
--
作者:
Jian Sun;You-ming Li;Yongyou Hu;B. Hou;Yaping Zhang;Sizhe Li
We investigated the mechanism of Congo red degradation and bacterial diversity in a single-chambered microbial fuel cell (MFC) incorporating a microfiltration membrane and air–cathode. The MFC was operated continuously for more than 4 months using a mixture of Congo red and glucose as fuel. We demonstrated that the Congo red azo bonds were reduced at the anode to form aromatic amines. This is consistent with the known mechanism of anaerobic biodegradation of azo dyes. The MFC developed a less dense biofilm at the anode in the presence of Congo red compared to its absence indicating that Congo red degradation negatively affected biofilm formation. Denaturing gradient gel electrophoresis and direct 16S ribosomal DNA gene nucleotide sequencing revealed that the microbial communities differed depending on whether Congo red was present in the MFC.Geobacter-like species known to generate electricity were detected in the presence or absence of Congo red. In contrast,Azospirillum,Methylobacterium,Rhodobacter,Desulfovibrio,Trichococcus, andBacteroidesspecies were only detected in its presence. These species were most likely responsible for degrading Congo red.