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Electrochemical reduction of halogenated organic contaminants using carbon-based cathodes: A review

炭黑 电化学 吸附 污染 化学 阴极 碳纤维 环境化学 卤化物 有机化学 电极 材料科学 吸附 生态学 天然橡胶 物理化学 复合数 复合材料 生物
作者
Jacob F. King,William A. Mitch
出处
期刊:Critical Reviews in Environmental Science and Technology [Taylor & Francis]
卷期号:54 (4): 342-367 被引量:15
标识
DOI:10.1080/10643389.2023.2239130
摘要

AbstractElectrochemical treatment systems show promise for water treatment due to their ease of operation, modularity, and low chemical inputs. This review examines use of carbon-based cathodes within reductive electrochemical treatment systems for halogenated organic contaminants, which encompasses a vast array of contaminant classes. Due to the high electron affinity of halogen substituents, halogenated contaminants are amenable to electrochemical reduction, forming halides as harmless products, while avoiding formation of halogenated byproducts by halide oxidation. Black carbons feature a high sorption capacity for halogenated contaminants, high conductivity and low expense. Black carbon-based cathode materials enable sorption of contaminants within short hydraulic contact times and destruction of sorbed contaminants over longer timescales. This review first describes the sorptive and conductive properties of black carbons that facilitate electron transfer to halogenated contaminants. The applied voltages required to degrade halogenated contaminants, contaminant degradation rates, reaction mechanisms and final products are discussed for halogenated alkanes, alkenes, and aromatics. The effect of metal impregnation of carbon-based electrodes on dehalogenation is reviewed. Finally, this review discusses challenges with the design of black carbon-based electrodes and scaling electrochemical reactors, and future research needs.Keywords: Black carbonelectrochemical reductionhalogenated organic contaminantHANDLING EDITORS: Albert Juhasz and Lena Q. Ma Disclosure statementNo potential conflict of interest was reported by the authors.Additional informationFundingJacob King was supported by the National Science Foundation Graduate Research Fellowship under Grant No. DGE − 1656518. Support was also provided by the UPS Foundation.
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