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通过多种(光)电化学反应途径现场生产过氧化氢的催化剂设计及环境应用的挑战与前景

Challenges and Prospects of Catalyst Design and Environmental Applications for On-Site Hydrogen Peroxide Production via Diverse (Photo)Electrochemical Reaction Pathways.

作者信息

Wang Zhenguang, Liu Shuling, Liu Yanyan, Wei Xinao, Liang Ning, Sang Zenong, Jiang Jianchun, Li Baojun

机构信息

College of Chemistry, Zhengzhou University, Zhengzhou, 450001, P. R. China.

College of Science, Henan Agricultural University, Zhengzhou, 450001, P. R. China.

出版信息

Small. 2025 Mar;21(10):e2410612. doi: 10.1002/smll.202410612. Epub 2025 Feb 9.

Abstract

Hydrogen peroxide (HO) is an environmentally friendly and efficient oxidant with diverse applications in the chemical industry, medicine, energy, and environmental protection. While the anthraquinone oxidation process has traditionally dominated industrial HO production, its complexity and high pollution levels present significant challenges. In response, alternative methods such as electrochemical, photochemical, and photoelectrochemical pathways have emerged, providing greener and more sustainable solutions. These innovative approaches leverage only water, oxygen, and solar or electrical energy, positioning them as viable substitutes for the energy-intensive anthraquinone process. This review delves into the latest advancements in HO production through the twoelectron oxygen reduction reaction (2eORR), twoelectron water oxidation reaction (2eWOR), and the synergistic two-channel pathway (2eORR + 2eWOR) in (photo)electrochemical systems, focusing on reaction pathways. It discusses underlying mechanisms, evaluation parameters, and the design of high-performance catalysts for on-site HO production in environmental applications. Recent developments in advanced (photo)electrocatalysts over the past five years are highlighted, including key design strategies that enhance catalytic performance. The review also addresses future challenges and prospects in catalyst design and practical environmental applications of (photo)electrochemical systems for HO production, serving as a valuable reference for researchers in the field.

摘要

过氧化氢(HO)是一种环境友好且高效的氧化剂,在化学工业、医药、能源和环境保护等领域有着广泛应用。虽然蒽醌氧化工艺在传统上主导着工业过氧化氢的生产,但其复杂性和高污染水平带来了重大挑战。作为回应,诸如电化学、光化学和光电化学途径等替代方法应运而生,提供了更绿色、更可持续的解决方案。这些创新方法仅利用水、氧气以及太阳能或电能,使其成为能源密集型蒽醌工艺的可行替代方案。本综述深入探讨了通过(光)电化学系统中的双电子氧还原反应(2eORR)、双电子水氧化反应(2eWOR)以及协同双通道途径(2eORR + 2eWOR)生产过氧化氢的最新进展,重点关注反应途径。它讨论了潜在机制、评估参数以及用于环境应用中现场生产过氧化氢的高性能催化剂的设计。突出了过去五年中先进(光)电催化剂的最新进展,包括提高催化性能的关键设计策略。该综述还探讨了用于过氧化氢生产的(光)电化学系统在催化剂设计和实际环境应用方面未来面临的挑战和前景,为该领域的研究人员提供了有价值的参考。

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