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氯酚生物降解的挑战与机遇:好氧、厌氧和生物电化学过程。

Challenges and opportunities for the biodegradation of chlorophenols: Aerobic, anaerobic and bioelectrochemical processes.

机构信息

School of Environmental Science and Engineering, Tianjin University, Tianjin 300350, China.

School of Environmental Science and Engineering, Tianjin University, Tianjin 300350, China.

出版信息

Water Res. 2021 Apr 1;193:116862. doi: 10.1016/j.watres.2021.116862. Epub 2021 Jan 22.

Abstract

Chlorophenols (CPs) are highly toxic and refractory contaminants which widely exist in various environments and cause serious harm to human and environment health and safety. This review provides comprehensive information on typical CPs biodegradation technologies, the most green and benign ones for CPs removal. The known aerobic and anaerobic degradative bacteria, functional enzymes, and metabolic pathways of CPs as well as several improving methods and critical parameters affecting the overall degradation efficiency are systematically summarized and clarified. The challenges for CPs mineralization are also discussed, mainly including the dechlorination of polychlorophenols (poly-CPs) under aerobic condition and the ring-cleavage of monochlorophenols (MCPs) under anaerobic condition. The coupling of functional materials and degraders as well as the operation of sequential anaerobic-aerobic bioreactors and bioelectrochemical system (BES) are promising strategies to overcome some current limitations. Future perspective and research gaps in this field are also proposed, including the further understanding of microbial information and the specific role of materials in CPs biodegradation, the potential application of innovative biotechnologies and new operating modes to optimize and maximize the function of the system, and the scale-up of bioreactors towards the efficient biodegradation of CPs.

摘要

氯酚(CPs)是高度有毒和难处理的污染物,广泛存在于各种环境中,对人类和环境健康与安全造成严重危害。本综述提供了有关典型 CPs 生物降解技术的全面信息,这些技术是去除 CPs 的最绿色和良性技术。综述了已知的好氧和厌氧降解菌、功能酶、CPs 的代谢途径以及几种提高方法和影响整体降解效率的关键参数,并对其进行了系统的总结和澄清。还讨论了 CPs 矿化的挑战,主要包括好氧条件下多氯酚(poly-CPs)的脱氯和厌氧条件下单氯酚(MCPs)的环裂解。功能材料与降解剂的耦合以及顺序厌氧-好氧生物反应器和生物电化学系统(BES)的运行是克服一些当前限制的有前途的策略。还提出了该领域的未来展望和研究空白,包括进一步了解微生物信息和材料在 CPs 生物降解中的具体作用,创新生物技术和新运行模式的潜在应用,以优化和最大化系统功能,以及生物反应器的放大,以实现 CPs 的高效生物降解。

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