School of Sciences, Great Bay University, Songshan Lake International Innovation Entrepreneurship Community A5, Dong Guan 523000, China.
State Key Laboratory of Molecular Reaction Dynamics, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, China.
J Chem Phys. 2023 Jun 7;158(21). doi: 10.1063/5.0153538.
The mode-specific dynamics for the dissociative chemisorption of H2O on rigid Ni(100) is investigated by approximate nine-dimensional (9D) quantum dynamics calculations. The vibrational state-specific 9D dissociation probabilities are obtained by site-averaging the site-specific seven-dimensional results based on an accurate full-dimensional potential energy surface newly developed by neural network fitting to density functional theory energy points with the revised version of the Perdew, Burke, and Ernzerhof functional. The mode specificity of H2O/Ni(100) is very different from that of H2O/Ni(111) or H2O/Cu(111) whose reactivity enhancement by vibrational excitations is quite efficient. For H2O/Ni(100), it is found that the excitation in the symmetric stretching mode is more efficacious than increasing the translational energy in promoting the reaction, while the excitations in the asymmetric stretching mode and bending mode are less efficacious than the translational energy at low collision energies. These interesting observations can be attributed to the near central-barrier reaction for H2O/Ni(100), as well as large discrepancies between the site-specific mode specificities at different impact sites. The mode-specific dynamics obtained in this study is different from that obtained with the reaction path Hamiltonian approach, indicating the importance of full-dimensional quantum dynamics for gas-surface reactions.
采用近似的九维(9D)量子动力学计算研究了刚性 Ni(100)上 H2O 离解化学吸附的模式特异性动力学。通过基于神经网络拟合密度泛函理论能量点的修订后的 Perdew、Burke 和 Ernzerhof 泛函,站点特异性七维结果的站点平均获得了振动状态特异性 9D 离解概率。H2O/Ni(100)的模式特异性与 H2O/Ni(111)或 H2O/Cu(111)非常不同,后者通过振动激发提高反应性的效率相当高。对于 H2O/Ni(100),发现对称伸缩模式的激发比增加平移能更有效地促进反应,而不对称伸缩模式和弯曲模式的激发比低碰撞能时的平移能效率低。这些有趣的观察结果可归因于 H2O/Ni(100)的近中心势垒反应,以及不同撞击点的特异性模式特异性之间的巨大差异。本研究中获得的模式特异性动力学与反应路径哈密顿方法获得的动力学不同,这表明全维量子动力学对于气-固反应的重要性。