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电催化体系中的原子氢:生成、鉴定与环境应用。

Atomic Hydrogen in Electrocatalytic Systems: Generation, Identification, and Environmental Applications.

机构信息

Textile Pollution Controlling Engineering Center of Ministry of Environmental Protection, College of Environmental Science and Engineering, Donghua University, Shanghai, 201620, China.

Textile Pollution Controlling Engineering Center of Ministry of Environmental Protection, College of Environmental Science and Engineering, Donghua University, Shanghai, 201620, China; Shanghai Institute of Pollution Control and Ecological Security, 1239 Siping Road, Shanghai, 200092, China.

出版信息

Water Res. 2022 Sep 1;223:118994. doi: 10.1016/j.watres.2022.118994. Epub 2022 Aug 18.

Abstract

Electrochemical reduction has emerged as a viable technology for the removal of a variety of organic contaminants from water. Atomic hydrogen (H*) is the primary species generated in electrochemical reduction processes. In this work, identification and quantification for H* are reviewed with a focus on methods used to generate H* at different positions. Additionally, we present recently developed proposals for the surface chemistry mechanisms of H* on the most commonly used cathodes as well as the use of H* in standard electrochemical reactors. The proposed reaction pathways in different H* systems for environmental applications are also discussed in detail. As shown in this review, the key hurdles facing H* reduction technologies are related to i) the establishment of systematic and practical synthetic methods; ii) the development of effective identification approaches with high specificity; and, iii) an in-depth exploration of the H* reaction mechanism to better understand the reaction process of H*.

摘要

电化学还原作为一种可行的技术,已被用于从水中去除各种有机污染物。原子氢(H*)是电化学还原过程中生成的主要物质。本工作重点综述了用于生成不同位置 H的方法,对 H的鉴定和定量方法进行了回顾。此外,我们还介绍了最近提出的关于最常用阴极上 H表面化学机制的建议,以及 H在标准电化学反应器中的应用。还详细讨论了不同 H体系在环境应用中的反应途径。正如本综述所示,H还原技术面临的关键障碍与以下方面有关:i)建立系统实用的合成方法;ii)开发具有高特异性的有效鉴定方法;以及,iii)深入探索 H反应机制,以更好地理解 H的反应过程。

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