Failure Mechanism Analysis and Emerging Strategies for Enhancing the Photoelectrochemical Stability of Photoanodes.

IF 7.5 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY ChemSusChem Pub Date : 2025-01-14 Epub Date: 2024-10-25 DOI:10.1002/cssc.202401420
Yingjuan Zhang, Boyan Liu, Liangcheng Xu, Zeran Ding, Rui Yang, Songcan Wang
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Abstract

The development of efficient and stable photoanode materials is essential for driving the possible practical application of photoelectrochemical water splitting. This article begins with a basic understanding of the fundamentals of photoelectrochemical devices and photoanodes. State-of-the-art strategies for designing photoanodes with long-term stability are highlighted, including insertion of hole transport layers, construction of protective/passivation layers, loading of co-catalysts, construction of heterojunctions, and modification of the electrolyte. Based on the insights gained from these effective strategies, we present an outlook for addressing key aspects of the challenges of stabilizing photoanodes development in the future work. Widespread adoption of stability assessment criteria will facilitate reliable comparisons of results from different laboratories. In addition, deactivation of photoanode is defined as a 50 % reduction in productivity. An in-depth understanding of the deactivation mechanism is essential for the design and development of efficient and stable photoanodes. This work will provide insights into the stability assessment of photoanode and facilitate the production of practical solar fuels.

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失效机理分析和增强光阳极光电化学稳定性的新策略。
开发高效稳定的光阳极材料对于推动光电化学水分离的实际应用至关重要。本文首先介绍了光电化学器件和光阳极的基本原理。文章重点介绍了设计具有长期稳定性的光阳极的最新策略,包括插入空穴传输层、构建保护层/钝化层、负载助催化剂、构建异质结和改性电解质。基于从这些有效策略中获得的启示,我们展望了在未来工作中应对稳定光阳极开发挑战的关键方面。广泛采用稳定性评估标准将有助于对不同实验室的结果进行可靠的比较。此外,光阳极失活的定义是生产率降低 50%。深入了解失活机制对于设计和开发高效稳定的光阳极至关重要。这项工作将为光阳极的稳定性评估提供深入见解,并促进实用太阳能燃料的生产。
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来源期刊
ChemSusChem
ChemSusChem 化学-化学综合
CiteScore
15.80
自引率
4.80%
发文量
555
审稿时长
1.8 months
期刊介绍: ChemSusChem Impact Factor (2016): 7.226 Scope: Interdisciplinary journal Focuses on research at the interface of chemistry and sustainability Features the best research on sustainability and energy Areas Covered: Chemistry Materials Science Chemical Engineering Biotechnology
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