Hu Xixi, Zhou Yipeng, Jiang Bin, Guo Hua, Xie Daiqian
Institute of Theoretical and Computational Chemistry, Key Laboratory of Mesoscopic Chemistry, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210093, China.
Phys Chem Chem Phys. 2017 May 24;19(20):12826-12837. doi: 10.1039/c7cp01697b.
The dissociative chemisorption dynamics of CO on rigid Co(112[combining macron]0) is investigated using a quasi-classical trajectory method on a new global six-dimensional potential energy surface (PES). The PES is fit using a neural network method to represent 24 630 density functional energies in various configurations. The reaction path features deep chemisorption wells and a late barrier for dissociation, agreeing well with previous calculations. The activation energy for dissociation ranges from 0.1 eV at the hollow site to 2.46 eV on the top site, indicating a highly corrugated PES. Effects of the incidence energy of the impinging molecule, its initial orientation, vibrational and rotational excitations, and site specificity are examined. Despite the presence of a low barrier, the initial dissociation probability is very small, even at high incident energies, as a large percentage of trajectories is either trapped or desorbed back to the gas phase. The low reactivity is attributed to inefficient energy transfer into the dissociation reaction coordinate in the chemisorption well where thermal equilibrium is not reached. This system underscores the importance of dynamics in understanding reactions at gas-surface interfaces and in kinetic modeling of catalytic processes.
在一个新的全局六维势能面(PES)上,使用准经典轨迹方法研究了CO在刚性Co(112[combining macron]0)上的解离化学吸附动力学。该势能面采用神经网络方法拟合,以表示各种构型下的24630个密度泛函能量。反应路径具有深化学吸附阱和晚期解离势垒,与先前的计算结果吻合良好。解离活化能范围从空心位的0.1 eV到顶位的2.46 eV,表明势能面高度起伏不平。研究了入射分子的入射能量、初始取向、振动和转动激发以及位点特异性的影响。尽管存在低势垒,但即使在高入射能量下,初始解离概率也非常小,因为很大一部分轨迹要么被困住,要么解吸回气相。低反应活性归因于在未达到热平衡的化学吸附阱中,能量向解离反应坐标的转移效率低下。该系统强调了动力学在理解气-固界面反应和催化过程动力学建模中的重要性。