研究电催化反应中固液界面动态的先进原位表征技术

Shiyu Li , Jin Yan , Xiaoxia Chen , Chudi Ni , Yiwen Chen , Meihuan Liu , Hui Su
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引用次数: 0

摘要

固液界面的反应动力学极大地影响着电催化反应的速率。在原子和分子水平上,准确识别活性位点的结构演化、反应中间产物的演化以及催化反应的机理,对于设计电化学储能和转换技术中的高效催化剂具有重要作用,尽管这仍然是一项极具挑战性的工作。本综述利用原位同步辐射 X 射线吸收精细结构 (SR-XAFS) 和同步辐射傅立叶变换红外光谱 (SR-FTIR) 技术,系统研究了电催化过程中固液电化学界面动态研究的最新成果。报告全面论述了原位 SR-XAFS 和 SR-FTIR 的不断发展,特别强调了多尺度监测活性中心结构演变的内容。此外,综述还强调了 SR-XAFS/FTIR 关联技术在探索电催化水分离、氧还原、硝酸盐还原和二氧化碳还原等主流研究领域的固液电化学界面动态方面所发挥的独特而强大的作用。最后,介绍了在工作条件下鉴定电催化材料中固液电界面动力学行为所面临的挑战和前景。本综述旨在就电催化过程中界面的动态演变提供充足、可靠和互补的信息,从而指导合理设计具有出色活性、选择性和稳定性的先进催化材料。
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Advanced in situ characterization techniques for studying the dynamics of solid-liquid interface in electrocatalytic reactions
The reaction kinetics at the solid-liquid interface significantly affects the rate of electrocatalytic reactions. At the atomic and molecular levels, accurately identifying the structural evolution of active sites, the evolution of reaction intermediates, and the mechanism of catalytic reactions play an important role for designing efficient catalysts in electrochemical energy storage and conversion technologies, though it remains highly challenging. This review systematically scrutinizes recent achievements in the dynamic investigation of solid-liquid electrochemical interfaces during electrocatalysis, using in situ synchrotron X-ray absorption fine structure (SR-XAFS) and synchrotron Fourier-transform infrared spectroscopy (SR-FTIR). It provides a comprehensive discussion on the continuous development of in situ SR-XAFS and SR-FTIR, with particular emphasis on the content of multi-scale monitoring the structural evolution of active centers. Moreover, the review highlights the unique and powerful role of correlative SR-XAFS/FTIR in exploring the dynamic of solid-liquid electrochemical interfaces in mainstream research areas such as electrocatalytic water splitting, oxygen reduction, nitrate reduction, and carbon dioxide reduction. Finally, the challenges and prospects of identifying the kinetic behavior of solid-liquid electrocatalytic interfaces in electrocatalytic materials under working conditions. This review aims to offer ample, reliable, and complementary information on the dynamic evolution of the interface during the electrocatalytic process, thereby guiding the rational design of advanced catalytic materials with outstanding activity, selectivity, and stability.
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