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构建双管颗粒污泥微生物燃料电池及其对偶氮染料降解的特性和机制。

Construction of double tube granular sludge microbial fuel cell and its characteristics and mechanism of azo dye degradation.

机构信息

School of Environmental and Chemical Engineering, Jiangsu University of Science and Technology, Zhenjiang, China.

Jiangsu R&D Center of the Ecological Textile Engineering & Technology, Yancheng Polytechnic College, Yancheng, China.

出版信息

Environ Sci Pollut Res Int. 2022 Aug;29(36):54606-54618. doi: 10.1007/s11356-022-19814-7. Epub 2022 Mar 19.

DOI:10.1007/s11356-022-19814-7
PMID:35305217
Abstract

Microbial fuel cells (MFCs) can obtain electrical energy from extensive organic matter and complete wastewater treatment at the same time. The principal purpose of the research is to find a solution to the biodegradation of X-3B in a double tube MFC with graphite fiber brush as the anode and carbon cloth as the cathode. The anaerobic, aerobic, and electrochemical processes in the MFC were investigated. The effects of dye concentration and circuit connectivity on the performances of MFCs were explored. The degradation efficiency of X-3B in the anode region (85.56%) was higher than that in the cathode region (14.16%) within 24 h under the optimal voltage of 0.43 V, indicating a synergistic effect between electrode reaction and biodegradation. The power density increased from 12.12 mW/m to 60.45 mW/m with the addition of X-3B from 50 to 200 mg/L, because of the reduced ohmic and polarization resistance. Intermediate productions such as aniline were manufactured with the conjugated double bond of X-3B broken, and the intermediates were degraded into small molecular products like phenol during further degradation processes. Moreover, dye concentration and circuit connection had significant effects on the relative abundance of the microbial community at phylum and genus levels. In general, MFC is a good approach to energy generation and azo dye treatment at the same time.

摘要

微生物燃料电池 (MFC) 可以从广泛的有机物中获取电能,并同时完成废水处理。本研究的主要目的是找到一种方法来解决双管 MFC 中 X-3B 的生物降解问题,其中石墨纤维刷作为阳极,碳布作为阴极。研究了 MFC 中的厌氧、好氧和电化学过程。探讨了染料浓度和电路连接对 MFC 性能的影响。在最佳电压 0.43V 下,X-3B 在阳极区(85.56%)的降解效率高于阴极区(14.16%),在 24 小时内,表明电极反应和生物降解之间存在协同作用。随着 X-3B 从 50 到 200mg/L 的添加,功率密度从 12.12mW/m 增加到 60.45mW/m,因为欧姆和极化电阻降低。X-3B 的共轭双键断裂产生了中间产物苯胺,在进一步的降解过程中,这些中间产物被降解成小分子产物,如苯酚。此外,染料浓度和电路连接对微生物群落的相对丰度在门和属水平上有显著影响。总的来说,MFC 是一种同时产生能源和处理偶氮染料的好方法。

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