Zhao Xin, Li Yanyan, Cui Yu, Saqib Muhammad, Zhang Xinyu, Hao Rui, Zheng Zhiping
Department of Chemistry, Southern University of Science and Technology, 518055 Shenzhen, China.
Department of Chemistry, Guangdong Provincial Key Laboratory of Energy Materials for Electric Power, Southern University of Science and Technology, 518055 Shenzhen, China.
J Am Chem Soc. 2023 Sep 27;145(38):20897-20906. doi: 10.1021/jacs.3c06062. Epub 2023 Sep 18.
Transition metal-layered hydroxides have been extensively studied in order to address the key challenge of slow kinetics of the oxygen evolution reaction (OER). However, how the catalytically active sites are evolved and the corresponding heterogeneous structure-property relationship remain unclear. Herein, using cobalt-layered hydroxide as a representative catalyst, we report a strategy for the comprehensive investigation of the electrocatalytic OER process at the single electrocatalyst level using combined electrochemiluminescence (ECL) and vis-absorption microscopy. The stepwise heterogeneous electrocatalytic responses of single-cobalt hydroxide nanoplates are unveiled with ECL imaging, and the corresponding valence state changes are revealed by vis-absorption imaging. The correlated and multimode analyses indicate that, during the oxidation process, the Co cations in the tetrahedral sites (Co) turned into Co and even the highly unstable Co, assisted by the interlayer water in a metastable CoOOH·HO phase. Crucially, the Co sites are mainly distributed in the inner part of the nanoplates and show superior electrocatalytic properties. The correlative single-particle imaging approach for electrocatalytic process analysis with high spatiotemporal and chemical resolution enables in-depth mechanistic insights to be generated and, in turn, will benefit the rational design of electrocatalysts with enhanced performance.
为应对析氧反应(OER)动力学缓慢这一关键挑战,过渡金属层状氢氧化物已得到广泛研究。然而,催化活性位点是如何演化的以及相应的非均相结构-性能关系仍不明确。在此,我们以钴层状氢氧化物为代表性催化剂,报告了一种在单电催化剂水平上使用电化学发光(ECL)和可见吸收显微镜对电催化OER过程进行全面研究的策略。通过ECL成像揭示了单氢氧化钴纳米片的逐步非均相电催化响应,并通过可见吸收成像揭示了相应的价态变化。相关的多模式分析表明,在氧化过程中,四面体位置的Co阳离子(Co)在亚稳CoOOH·HO相中的层间水辅助下转变为Co甚至高度不稳定的Co。至关重要的是,Co位点主要分布在纳米片的内部,并表现出优异的电催化性能。这种具有高时空和化学分辨率的用于电催化过程分析的相关单粒子成像方法能够产生深入的机理见解,进而有利于合理设计性能增强的电催化剂。