Key Laboratory for Macromolecular Science of Shaanxi Province, School of Chemistry & Chemical Engineering , Shaanxi Normal University , Xi'an 710119 , China.
Centre for Clean Environment and Energy, School of Environment and Science , Griffith University , Gold Coast Campus , Southport , Queensland 4222 , Australia.
ACS Appl Mater Interfaces. 2018 Nov 21;10(46):39624-39630. doi: 10.1021/acsami.8b12573. Epub 2018 Nov 9.
The determination of active sites of materials is essential for the molecular design of high-performance catalysts. In this study, the first-principles method is applied to investigate the active sites of low-cost Ni metal-based electrocatalysts for hydrogen evolution reactions (HER), which is a promising alternative to expensive Pt metal-based catalysts. The adsorption of hydrogen on different sites of pristine and partially oxidized Ni(111) surface is investigated. All of the possible configurations have been systematically investigated here with the consideration of their Boltzmann distribution. Using the Gibbs free energy of intermediate H atoms (Δ G) as a descriptor, it is found that the Δ G increases with the increase of the coverage of oxygen atoms. The slightly oxidized surface Ni atoms are theoretically identified to be the best catalytic centers for the electrocatalytic HERs when the coverage of oxygen is considerably low. On the basis of the analyses of Bader charge distribution and density of states, our results reveal that the superior performance of the slightly oxidized surface Ni atoms can be ascribed to the optimal electronic properties.
确定材料的活性位对于设计高性能催化剂的分子至关重要。在这项研究中,我们应用第一性原理方法研究了低成本 Ni 金属基析氢反应(HER)电催化剂的活性位,这是一种有前途的替代昂贵 Pt 金属基催化剂的方法。研究了氢在原始和部分氧化 Ni(111)表面不同位置的吸附。在此,我们系统地研究了所有可能的构型,并考虑了它们的玻尔兹曼分布。使用中间 H 原子的吉布斯自由能(ΔG)作为描述符,发现ΔG 随氧原子覆盖度的增加而增加。当氧的覆盖度相当低时,理论上确定略微氧化的表面 Ni 原子是电催化 HER 反应的最佳催化中心。基于 Bader 电荷分布和态密度的分析,我们的结果表明,略微氧化的表面 Ni 原子的优异性能可归因于其最佳的电子性质。