Yuan Jiuchuang, He Di, Chen Maodu
Key Laboratory of Materials Modification by Laser, Electron, and Ion Beams (Ministry of Education), School of Physics and Optoelectronic Technology, Dalian University of Technology, Dalian 116024, P. R. China.
Phys Chem Chem Phys. 2015 May 7;17(17):11732-9. doi: 10.1039/c4cp05352d.
A new global potential energy surface (PES) is obtained for the ground electronic state of the LiH2 system based on high-level energies. The energy points are calculated at the multireference configuration interaction level with aug-cc-pVXZ (X = Q, 5) basis sets, and these energies are extrapolated to the complete basis set limit. The neural network method and hierarchical construction scheme are applied in the fitting process and the root mean square error of the fitting result is very small (0.004 eV). The dissociation energies and equilibrium distances for LiH(X(1)Σ(+)) and H2(X(1)Σg(+)) obtained from the new PES are in good agreement with the experimental data. On the new PES, time-dependent wave packet studies for the H((2)S) + LiH(X(1)Σ(+)) → Li((2)S) + H2(X(1)Σg(+)) reaction have been carried out. In this reaction, no threshold is found due to the absence of an energy barrier on the minimum energy path. The calculated integral cross sections are high at low collision energy and will decrease with the increase of the collision energy. The product molecule H2 tends to be forward scattering due to direct reactive collisions, which becomes more evident at higher collision energies.
基于高水平能量,获得了LiH₂体系基态电子的新的全局势能面(PES)。能量点是在多参考组态相互作用水平下,使用aug-cc-pVXZ(X = Q, 5)基组计算得到的,并且这些能量被外推到完备基组极限。在拟合过程中应用了神经网络方法和分层构建方案,拟合结果的均方根误差非常小(0.004 eV)。从新的PES获得的LiH(X(¹)Σ⁺)和H₂(X(¹)Σg⁺)的离解能和平衡距离与实验数据吻合良好。在新的PES上,对H((²)S) + LiH(X(¹)Σ⁺) → Li((²)S) + H₂(X(¹)Σg⁺)反应进行了含时波包研究。在该反应中,由于在最小能量路径上不存在能垒,未发现阈值。计算得到的积分截面在低碰撞能量下较高,并将随着碰撞能量的增加而减小。由于直接反应碰撞,产物分子H₂倾向于前向散射,这在较高碰撞能量下变得更加明显。