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Sulfide-mediated azo dye degradation and microbial community analysis in a single-chamber air cathode microbial fuel cell

机译:硫化物介导的偶氮染料在单室空气阴极微生物燃料电池中的降解和微生物群落分析

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Several textile industry processes produce complex organics, azo dyes and sulfide streams that pose a severe challenge to environmental protection. In this work, single-chamber air cathode microbial fuel cells were used to investigate the interaction mechanisms among Congo red decolorization, sulfide oxidation and bioelectricity generation. The results showed that effective removal of sulfide (>98%) and azo dyes (>88%) was achieved at an initial sulfide/dye ratio of 0.9 under neutral conditions, accompanied by a maximum power output of approx- imately 23.50 mW m(-2). In this study, biogenic sulfide played a major role in azo dye decolorization and power generation compared with the chemical sulfide. The results indicated that bulk reduction of sulfide and cell lysis products during biogenic sulfide production by sulfate-reduction bacteria could accelerate the chemical reduction of azo dyes. Moreover, S-0, SO42- and S2O32- were identified as degradation products, and the intermediates primarily included 3,4-diaminonaphthalene-1-sulfonic add, sodium 4-aminonaphthalene-1-sulfonate and 4.4'-diamine biphenyl. Microbial community analysis showed that Proteobacteria (80.7%), Gammaproteobacteria (48.1%), and Dokdonella (29.5%) dominated at the phylum, class, and genus levels, respectively, of the anodic biofilm. This study offers a feasible option for the treatment of recalcitrant organics, azo dyes and sulfide pollutants using single-chamber air cathode MFCs. (C) 2019 Elsevier B.V. All rights reserved.
机译:一些纺织工业流程产生复杂的有机物,偶氮染料和硫化物流是构成对保护环境的严峻挑战。在这项工作中,单室空气阴极微生物燃料电池被用来研究中刚果红脱色,硫化物氧化和生物电产生的相互作用的机制。结果表明,有效地除去硫化物的(> 98%)和偶氮染料(> 88%),在中性条件下0.9的初始硫化物/染料比率达到了,伴随着的approx- imately 23.50毫瓦m的最大功率输出( -2)。在这项研究中,生物源硫化物起到与化学硫化物相比,偶氮染料脱色和发电的主要角色。结果表明:生物源硫化物的生产过程中硫酸盐还原菌的硫化物和细胞裂解的产品,减少废物体积可能会加速化学还原偶氮染料。此外,S-0,SO42-和S2O32-被鉴定为降解产物和中间体主要包括3,4-二氨基萘-1-磺酸的添加,钠4-氨基萘-1-磺酸盐和4,4'-二胺联苯。表明变形菌(80.7%),γ-变形菌(48.1%),和Dokdonella(29.5%),在门,类为主,属水平,分别为阳极生物膜的微生物群落分析。这项研究提供了难降解有机物,偶氮染料和硫化物污染使用单室空气阴极微生物燃料电池的治疗可行的选择。 (c)2019年Elsevier B.V.保留所有权利。

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