Zhao Jinyu, Lian Jie, Zhao Zhenxin, Wang Xiaomin, Zhang Jiujun
College of Materials Science and Engineering, Taiyuan University of Technology, Taiyuan, 030024, People's Republic of China.
Institute for Sustainable Energy/College of Sciences, Shanghai University, Shanghai, 200444, People's Republic of China.
Nanomicro Lett. 2022 Dec 29;15(1):19. doi: 10.1007/s40820-022-00984-5.
Electrocatalytic oxygen reduction reaction (ORR) is one of the most important reactions in electrochemical energy technologies such as fuel cells and metal-O/air batteries, etc. However, the essential catalysts to overcome its slow reaction kinetic always undergo a complex dynamic evolution in the actual catalytic process, and the concomitant intermediates and catalytic products also occur continuous conversion and reconstruction. This makes them difficult to be accurately captured, making the identification of ORR active sites and the elucidation of ORR mechanisms difficult. Thus, it is necessary to use extensive in-situ characterization techniques to proceed the real-time monitoring of the catalyst structure and the evolution state of intermediates and products during ORR. This work reviews the major advances in the use of various in-situ techniques to characterize the catalytic processes of various catalysts. Specifically, the catalyst structure evolutions revealed directly by in-situ techniques are systematically summarized, such as phase, valence, electronic transfer, coordination, and spin states varies. In-situ revelation of intermediate adsorption/desorption behavior, and the real-time monitoring of the product nucleation, growth, and reconstruction evolution are equally emphasized in the discussion. Other interference factors, as well as in-situ signal assignment with the aid of theoretical calculations, are also covered. Finally, some major challenges and prospects of in-situ techniques for future catalysts research in the ORR process are proposed.
电催化氧还原反应(ORR)是电化学能源技术(如燃料电池和金属-氧/空气电池等)中最重要的反应之一。然而,克服其缓慢反应动力学的关键催化剂在实际催化过程中总是经历复杂的动态演变,同时伴随的中间体和催化产物也会发生连续的转化和重构。这使得它们难以被准确捕获,导致ORR活性位点的识别和ORR机理的阐明变得困难。因此,有必要使用广泛的原位表征技术来实时监测ORR过程中催化剂的结构以及中间体和产物的演变状态。本文综述了使用各种原位技术表征各种催化剂催化过程的主要进展。具体而言,系统总结了原位技术直接揭示的催化剂结构演变,例如相、价态、电子转移、配位和自旋态的变化。讨论中同样强调了中间体吸附/解吸行为的原位揭示以及产物成核、生长和重构演变的实时监测。还涵盖了其他干扰因素以及借助理论计算进行的原位信号归属。最后,提出了原位技术在未来ORR过程催化剂研究中的一些主要挑战和前景。