在微生物电化学系统中,通过集成的阴极和阳极过程来增强对某些顽固性有机污染物的降解:前沿综述

IF 6.6 Q1 ENGINEERING, ENVIRONMENTAL
Kaichao Yang , Ibrahim M. Abu-Reesh , Zhen He
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引用次数: 5

摘要

微生物电化学系统(MES)技术在有机降解领域得到了广泛的研究。然而,去除含有卤素,硝基或偶氮基团的顽固有机污染物仍然是一个巨大的挑战。在MES中集成阴极和阳极过程能够通过顺序还原和氧化过程改善或完成目标卤素,硝基和偶氮有机物的矿化。这样,阴极用于还原有毒的目标有机物,阳极用于氧化还原过程中残留的有机物,同时产生电子来支持还原过程。本文简要介绍了MES中阴极-阳极顺序污染物降解及其具体机理。讨论了提高MES降解性能的潜在策略,主要包括生物催化阴极的应用与发展、阳极操作条件的优化、阳极细菌和电极材料的改进。提出了对未来发展方向的展望,并确定了关键挑战,即实际废水中可能共存的其他化合物对目标污染物的竞争或抑制影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing the degradation of selected recalcitrant organic contaminants through integrated cathode and anode processes in microbial electrochemical systems: A frontier review

Microbial electrochemical system (MES) technology has been widely investigated for organic degradation. However, the removal of recalcitrant organic contaminants containing halogen-, nitro-, or azo-groups remains a great challenge. Integrating the cathodic and anodic processes in an MES is able to improve or complete the mineralization of the target halogen-, nitro- and azo-organics via a sequential reductive and oxidative process. In this way, a cathode is used to reduce the toxic target organics, while an anode is to oxidize the residual organics from the reduction process and at the same time generate electrons to support the reduction process. This paper has provided a concise review about the sequential cathode-anode contaminant degradation in an MES and its specific mechanisms. Potential strategies to improve the MES degradation performance were discussed, mainly including the application and development of the biocatalyzed cathode as well as the optimization of the anodic operating condition and the improvement of anodic bacteria and electrode material. Perspectives on future directions were proposed and the key challenges were identified as the competitive or inhibitive influence of other compounds that could coexist in real wastewater on the target contaminants.

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来源期刊
Journal of hazardous materials letters
Journal of hazardous materials letters Pollution, Health, Toxicology and Mutagenesis, Environmental Chemistry, Waste Management and Disposal, Environmental Engineering
CiteScore
10.30
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