Wang Dong, Gong Xue-Qing
Key Laboratory for Advanced Materials and Joint International Research Laboratory for Precision Chemistry and Molecular Engineering, Feringa Nobel Prize Scientist Joint Research Center, Centre for Computational Chemistry and Research Institute of Industrial Catalysis, School of Chemistry and Molecular Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai, 200237, China.
Nat Commun. 2021 Jan 8;12(1):158. doi: 10.1038/s41467-020-20464-x.
While the precise design of catalysts is one of ultimate goals in catalysis, practical strategies often fall short, especially for complicated photocatalytic processes. Here, taking the hydrogen evolution reaction (HER) as an example, we introduce a theoretical approach for designing robust metal cocatalysts supported on TiO using density functional theory calculations adopting on-site Coulomb correction and/or hybrid functionals. The approach starts with clarifying the individual function of each metal layer of metal/TiO composites in photocatalytic HER, covering both the electron transfer and surface catalysis aspects, followed by conducting a function-oriented optimization via exploring competent candidates. With this approach, we successfully determine and verify bimetallic Pt/Rh/TiO and Pt/Cu/TiO catalysts to be robust substitutes for conventional Pt/TiO. The right metal type as well as the proper stacking sequence are demonstrated to be key to boosting performance. Moreover, we tentatively identify the tunneling barrier height as an effective descriptor for the important electron transfer process in photocatalysis on metal/oxide catalysts. We believe that this study pushes forward the frontier of photocatalyst design towards higher water splitting efficiency.
虽然催化剂的精确设计是催化领域的最终目标之一,但实际策略往往难以实现,尤其是对于复杂的光催化过程。在此,以析氢反应(HER)为例,我们采用包含在位库仑校正和/或杂化泛函的密度泛函理论计算,介绍一种设计负载于TiO上的稳健金属助催化剂的理论方法。该方法首先阐明金属/TiO复合材料中各金属层在光催化HER中的单独作用,涵盖电子转移和表面催化两个方面,然后通过探索合适的候选物进行面向功能的优化。通过这种方法,我们成功确定并验证双金属Pt/Rh/TiO和Pt/Cu/TiO催化剂是传统Pt/TiO的稳健替代品。合适的金属类型以及恰当的堆叠顺序被证明是提高性能的关键。此外,我们初步确定隧穿势垒高度是金属/氧化物催化剂光催化中重要电子转移过程的有效描述符。我们相信这项研究推动了光催化剂设计朝着更高的水分解效率迈进。