He Mingqi, Zhou Yanan, Luo Qiquan, Yang Jinlong
Department of Chemical Physics, Key Laboratory of Precision and Intelligent Chemistry, Hefei National Research Center for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, Anhui 230026, China.
School of Material Science and Chemical Engineering, Institute of Mass Spectrometry, Ningbo University, Fenghua Road 818, Ningbo 315211, China.
Nanoscale. 2024 Aug 22;16(33):15670-15676. doi: 10.1039/d4nr01864h.
Maximizing platinum's atomic utilization and understanding the anchoring mechanism between platinum moieties and their supports are crucial for the hydrogen evolution reaction (HER). Using density functional theory, we investigate the catalyst of a Pt monolayer on the two-dimensional MoTiC substrate (Pt/MoTiC) for the reaction. This Pt monolayer shows a Pt(111)-like pattern, with its Pt-Pt bond elongated by about 0.1 Å compared to Pt(111); charge transfer from MoTiC to the Pt monolayer leads to significant charge accumulation on Pt. This substantial monolayer metal-support interaction optimizes hydrogen adsorption toward optimal HER activity under both constant charge and potential conditions, making Pt/MoTiC a promising HER catalyst. Detailed studies reveal that the dominant Volmer-Tafel mechanism in the HER occurs on the 1 monolayer hydrogen-covered Pt/MoTiC surface. The surface Pourbaix diagram identifies this as the stable surface termination under the electrochemical reaction conditions. These findings provide insights into designing stable, efficient, and low platinum-loaded HER catalysts.
最大化铂的原子利用率并理解铂部分与其载体之间的锚定机制对于析氢反应(HER)至关重要。我们使用密度泛函理论研究了二维MoTiC衬底上的单层铂催化剂(Pt/MoTiC)用于该反应。该单层铂呈现出类似Pt(111)的图案,其Pt-Pt键相较于Pt(111)伸长了约0.1 Å;电荷从MoTiC转移到单层铂导致铂上有显著的电荷积累。这种显著的单层金属-载体相互作用在恒定电荷和电势条件下优化了氢吸附以实现最佳的HER活性,使Pt/MoTiC成为一种有前景的HER催化剂。详细研究表明,HER中占主导的Volmer-Tafel机制发生在覆盖有单层氢的Pt/MoTiC表面。表面Pourbaix图表明这是电化学反应条件下的稳定表面终止状态。这些发现为设计稳定、高效且低铂负载的HER催化剂提供了见解。