Yang Yuqi, Shen Tonghao, Xu Xin
Collaborative Innovation Center of Chemistry for Energy Materials, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, MOE Key Laboratory of Computational Physical Sciences, Department of Chemistry, Fudan University Shanghai 200433 People's Republic of China
Chem Sci. 2022 May 5;13(21):6385-6396. doi: 10.1039/d2sc01729f. eCollection 2022 Jun 1.
The rational design of Pt-based catalysts for the low-temperature water-gas-shift (LT-WGS) reaction is an active research field because of its important role played in the fuel cell-based hydrogen economy, especially in mobile applications. Previous theoretical analyses have suggested that Pt alloys, leading to a weaker CO binding affinity than the Pt metal, could help alleviate CO poisoning and thus should be promising catalysts of the LT-WGS reaction. However, experimental research along this line was rather ineffective in the past decade. In the present work, we employed the state-of-the-art kinetic Monte Carlo (KMC) simulations to examine the influences of the electronic effect by introducing sub-surface alloys and/or core-shell structures, and the synergetic effect by introducing single atom alloys on the catalytic performance of Pt-alloy catalysts. Our KMC simulations have highlighted the importance of the OH binding affinity on the catalyst surfaces to reduce the barrier of water dissociation as the rate determining step, instead of the CO binding affinity as has been emphasized before in conventional mean-field kinetic models. Along this new direction of catalyst design, we found that Pt-Ru synergetic effects can significantly increase the activity of the Pt metal, leading to Ru@Pt alloys with a tetrahedron site of one surface-three subsurface Ru atoms on the Pt host, showing a turnover frequency of about five orders of magnitude higher than the Pt metal.
由于基于燃料电池的氢经济中,特别是在移动应用中,低温水煤气变换(LT-WGS)反应所起的重要作用,用于该反应的铂基催化剂的合理设计是一个活跃的研究领域。先前的理论分析表明,铂合金对一氧化碳的结合亲和力比铂金属弱,有助于减轻一氧化碳中毒,因此应该是低温水煤气变换反应的有前景的催化剂。然而,在过去十年中,沿着这条路线的实验研究相当无效。在本工作中,我们采用了最先进的动力学蒙特卡罗(KMC)模拟,通过引入次表面合金和/或核壳结构来研究电子效应的影响,并通过引入单原子合金来研究协同效应对铂合金催化剂催化性能的影响。我们的KMC模拟强调了催化剂表面上OH结合亲和力对于降低作为速率决定步骤的水离解势垒的重要性,而不是像传统平均场动力学模型中之前所强调的CO结合亲和力。沿着这个新的催化剂设计方向,我们发现Pt-Ru协同效应可以显著提高铂金属的活性,导致在Pt主体上具有一个表面三个次表面Ru原子的四面体位点的Ru@Pt合金,其周转频率比铂金属高约五个数量级。