Treatments of Heavy Metals in Bio Electrochemical Systems (BES) and Microbial Transfer Mechanisms: Analyses of Influencing Factors, Future Research Directions, Prospect and Outlook

IF 3 4区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES
Zelin Lian, Fan-Ying Kong
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引用次数: 0

Abstract

The environmental threat, pollution and damage posed by heavy metals to air, water, and soil emphasize the critical need for effective remediation strategies. This review mainly focuses on microbial electrochemical technologies (MET) for treating heavy metal pollutants, specifically includes Chromium (Cr), Copper (Cu), Zinc (Zn), Cadmium (Cd), Lead (Pb), Nickel (Ni), and Cobalt (Co). First, it explores the mechanisms and current applications of MET in heavy metal treatments in detail. Second, it systematically summarizes the key microbial communities involved, analyzing their extracellular electron transfer (EET) processes and summarizing strategies to enhance the EET efficiencies. Next, the review also highlights the synergistic microbial interactions in bioelectrochemical systems (BES) during the recovery and removal (remediation) processes of heavy metals, underscoring the crucial role of microorganisms in the transfer of the electrons. Then, this paper discussed how factors including pH values, applied voltages, types and concentrations of electron donors, electrode materials, biofilm thickness and other factors affect the treatment efficiencies of some specific metals in BES. BES has shown its great superiority in treating heavy metals. For example, for the treatments of Cr6+, under low pH conditions, the recovery and removal rate of Cr⁶⁺ by double chambers microbial fuel cell (DCMFC) can generally reach 98–99%, with some cases even achieving 100% (Gangadharan & Nambi, 2015). For the treatments of heavy metal ions such as Cu2+, Zn2+ and Cd2+, BES can also achieve the rates of treatments of more than 90% under the corresponding conditions of appropriate pH values and applied voltages(Choi, Hu, & Lim, 2014; W. Teng, G. Liu, H. Luo, R. Zhang, & Y. Xiang, 2016; Y. N. Wu et al., 2019; Y. N. Wu et al., 2018). After that, the review outlines the future challenges and the research opportunities for understanding the mechanisms of BES and microbial EET in heavy metal treatments. Finally, the prospect of future BES researches are pointed out, including the combinations with existing wastewater treatment systems, the integrations with the wind energy and the solar energy, and the application of machine learning (ML) in future BES. This article has certain significance and value for readers to better understand the working principles of BES and better operate and control BES to deal with heavy metal pollutants.

重金属在生物电化学系统(BES)中的处理及微生物转移机制:影响因素分析、未来研究方向及展望
重金属对空气、水和土壤造成的环境威胁、污染和破坏强调了对有效修复策略的迫切需要。本文主要综述了微生物电化学技术(MET)对重金属污染物的处理,具体包括铬(Cr)、铜(Cu)、锌(Zn)、镉(Cd)、铅(Pb)、镍(Ni)和钴(Co)。首先,详细探讨了MET在重金属处理中的作用机制和应用现状。其次,系统总结了涉及的关键微生物群落,分析了它们的细胞外电子转移(EET)过程,总结了提高EET效率的策略。接下来,综述还重点介绍了生物电化学系统(BES)在重金属回收和去除(修复)过程中的协同微生物相互作用,强调了微生物在电子转移中的关键作用。然后,讨论了pH值、施加电压、给电子体类型和浓度、电极材料、生物膜厚度等因素对BES中某些特定金属处理效率的影响。BES在处理重金属方面显示出巨大的优势。例如,对于Cr6+的处理,在低pH条件下,双室微生物燃料电池(DCMFC)对Cr6+的回收率和去除率一般可以达到98-99%,有的甚至可以达到100% (Gangadharan &;Nambi, 2015)。对于Cu2+、Zn2+、Cd2+等重金属离子,在相应的pH值和施加电压条件下,BES的处理率也可以达到90%以上(Choi, Hu, &;Lim, 2014;滕伟,刘国光,罗宏,张荣,等;向阳,2016;吴玉宁等,2019;吴玉宁等,2018)。在此基础上,综述了未来在了解BES和微生物EET在重金属处理中的作用机制方面面临的挑战和研究机遇。最后,展望了未来BES的研究前景,包括与现有废水处理系统的结合、与风能和太阳能的集成以及机器学习(ML)在未来BES中的应用。本文对读者更好地了解BES的工作原理,更好地操作和控制BES处理重金属污染物具有一定的意义和价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Water, Air, & Soil Pollution
Water, Air, & Soil Pollution 环境科学-环境科学
CiteScore
4.50
自引率
6.90%
发文量
448
审稿时长
2.6 months
期刊介绍: Water, Air, & Soil Pollution is an international, interdisciplinary journal on all aspects of pollution and solutions to pollution in the biosphere. This includes chemical, physical and biological processes affecting flora, fauna, water, air and soil in relation to environmental pollution. Because of its scope, the subject areas are diverse and include all aspects of pollution sources, transport, deposition, accumulation, acid precipitation, atmospheric pollution, metals, aquatic pollution including marine pollution and ground water, waste water, pesticides, soil pollution, sewage, sediment pollution, forestry pollution, effects of pollutants on humans, vegetation, fish, aquatic species, micro-organisms, and animals, environmental and molecular toxicology applied to pollution research, biosensors, global and climate change, ecological implications of pollution and pollution models. Water, Air, & Soil Pollution also publishes manuscripts on novel methods used in the study of environmental pollutants, environmental toxicology, environmental biology, novel environmental engineering related to pollution, biodiversity as influenced by pollution, novel environmental biotechnology as applied to pollution (e.g. bioremediation), environmental modelling and biorestoration of polluted environments. Articles should not be submitted that are of local interest only and do not advance international knowledge in environmental pollution and solutions to pollution. Articles that simply replicate known knowledge or techniques while researching a local pollution problem will normally be rejected without review. Submitted articles must have up-to-date references, employ the correct experimental replication and statistical analysis, where needed and contain a significant contribution to new knowledge. The publishing and editorial team sincerely appreciate your cooperation. Water, Air, & Soil Pollution publishes research papers; review articles; mini-reviews; and book reviews.
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