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首页> 外文期刊>Chemosphere >Azo dye as part of co-substrate in a biofilm electrode reactor-microbial fuel cell coupled system and an analysis of the relevant microorganisms
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Azo dye as part of co-substrate in a biofilm electrode reactor-microbial fuel cell coupled system and an analysis of the relevant microorganisms

机译:偶氮染料作为生物膜电极反应器-微生物燃料电池耦合系统中共底物的一部分,并对相关微生物进行分析

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In general, refractory organics were hardly used as co-substrate in bioelectrochemical system. This study established a coupled bioelectrochemical system composed of a biofilm electrode reactor and a microbial fuel cell for using the azo dye X-3B as part of co-substrate. The two units degraded the azo dye X-3B stepwise while using it as part of co-substrate. Our results indicated that the removal efficiency of X-3B increased 28.5% using the coupled system compared with a control system. Moreover, the addition of the co-substrate glucose, which was necessary for MFC electricity generation, was reduced on the premise of stable removal efficiency in the coupled system to prevent resource waste due to using X-3B as part of co-substrate. The intermediate products of X-3B degradation were further explored using gas chromatography-mass spectrometry and a X-3B degradation pathway was proposed at the same time. Microbial communities were analyzed, illustrating that the mechanism of X-3B degradation was dependent on bioelectrochemistry rather than on microbial degradation. (C) 2018 Elsevier Ltd. All rights reserved.
机译:通常,难熔有机物几乎没有用作生物电化学系统中的共底物。这项研究建立了一个由生物膜电极反应器和微生物燃料电池组成的耦合生物电化学系统,该系统将偶氮染料X-3B用作共底物的一部分。这两个单元逐步将偶氮染料X-3B降解,同时将其用作共底物的一部分。我们的结果表明,与控制系统相比,使用耦合系统时X-3B的去除效率提高了28.5%。而且,在MFC系统发电所必需的共基质葡萄糖的添加被减少了,前提是在耦合系统中稳定的去除效率以防止由于使用X-3B作为共基质的一部分而造成的资源浪费。利用气相色谱-质谱法进一步探索了X-3B降解的中间产物,同时提出了X-3B降解的途径。对微生物群落进行了分析,表明X-3B降解的机理取决于生物电化学而不是微生物降解。 (C)2018 Elsevier Ltd.保留所有权利。

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