Li Haiyan, Zhang Yuwei, Chen Yubo, Li Yang, Li Zhongjian, Yang Bin, Zhang Qinghua, Lu Jianguo, Lei Lecheng, Xu Zhichuan J, Hou Yang
Key Laboratory of Biomass Chemical Engineering of Ministry of Education, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, 310027, China.
Hydrogen Energy Institute, Zhejiang University, Hangzhou, 310027, China.
Angew Chem Int Ed Engl. 2025 Feb 17;64(8):e202423071. doi: 10.1002/anie.202423071. Epub 2025 Jan 22.
Electrochemical water splitting is a pivotal technology for storing intermittent electricity from renewable sources into hydrogen fuel. However, its overall energy efficiency is impeded by the sluggish oxygen evolution reaction (OER) at the anode. In the quest to design high-performance anode catalysts for driving the OER under non-acidic conditions, iron (Fe) has emerged as a crucial element. Although the profound impact of adventitious electrolyte Fe species on OER catalysis had been reported forty years ago, recent interest in tailoring the electrode-electrolyte interface has spurred studies on the controlled introduction of Fe ions into the electrolyte to improve OER performance. During the catalytic process, scenarios where the rate of Fe deposition on a specific host material outruns that of dissolution pave the way for establishing highly efficient and dynamically stable electrochemical interfaces for long-term steady operation. This review systematically summarizes recent endeavors devoted to elucidating the behaviors of in situ Fe incorporation, the role of incorporated Fe sites in the OER, and critical factors influencing the interplay between the electrode surface and Fe ions in the electrolyte environment. Finally, unexplored issues related to comprehensively understanding and leveraging the dynamic exchange of Fe at the interface for improved OER catalysis are summarized.
电化学水分解是将可再生能源的间歇性电力储存为氢燃料的关键技术。然而,其整体能源效率受到阳极上缓慢的析氧反应(OER)的阻碍。在寻求设计用于在非酸性条件下驱动OER的高性能阳极催化剂的过程中,铁(Fe)已成为关键元素。尽管四十年前就已报道了杂质电解质铁物种对OER催化的深远影响,但最近对调整电极-电解质界面的兴趣激发了关于将铁离子可控引入电解质以提高OER性能的研究。在催化过程中,铁在特定主体材料上的沉积速率超过溶解速率的情况为建立用于长期稳定运行的高效且动态稳定的电化学界面铺平了道路。本综述系统地总结了最近致力于阐明原位铁掺入行为、掺入的铁位点在OER中的作用以及在电解质环境中影响电极表面与铁离子相互作用的关键因素的努力。最后,总结了与全面理解和利用界面处铁的动态交换以改善OER催化相关的未探索问题。