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Li(2p) + H2(X(1)Σ(+)g) → LiH(X(1)Σ(+)) + H反应的全球非绝热势能面及量子动力学研究

Global diabatic potential energy surfaces and quantum dynamical studies for the Li(2p) + H2(X(1)Σ(+)g) → LiH(X(1)Σ(+)) + H reaction.

作者信息

He Di, Yuan Jiuchuang, Li Huixing, Chen Maodu

机构信息

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, PR China.

出版信息

Sci Rep. 2016 Apr 29;6:25083. doi: 10.1038/srep25083.

Abstract

The global diabatic potential energy surfaces which are correlated with the ground state 1A' and the excited state 2A' of the Li(2p) + H2 reaction are presented in this study. The multi-reference configuration interaction method and large basis sets (aug-cc-pVQZ for H atom and cc-pwCVQZ for Li atom) were employed in the ab initio single-point energy calculations. The diabatic potential energies were generated by the diabatization scheme based on transition dipole moment operators. The neural network method was utilized to fit the matrix elements of the diabatic energy surfaces, and the root mean square errors were extremely small (3.69 meV for , 5.34 meV for and 5.06 meV for ). The topographical features of the diabatic potential energy surfaces were characterized and the surfaces were found to be sufficiently smooth for the dynamical calculation. The crossing seam of the conical intersections between the and surfaces were pinpointed. Based on this new analytical diabatic potential energy surfaces, time-dependent wave packet calculation were conducted to investigate the mechanism of the title reaction. At low collision energies, the product LiH molecule tends to forward scattering, while at high collision energies, the forward and backward scatterings exist simultaneously.

摘要

本研究给出了与Li(2p)+H₂反应的基态¹A'和激发态²A'相关的全球非绝热势能面。在从头算单点能量计算中采用了多参考组态相互作用方法和大基组(H原子用aug-cc-pVQZ,Li原子用cc-pwCVQZ)。非绝热势能由基于跃迁偶极矩算符的 diabatic 化方案生成。利用神经网络方法拟合非绝热能量面的矩阵元,均方根误差极小(对于[具体情况1]为3.69 meV,对于[具体情况2]为5.34 meV,对于[具体情况3]为5.06 meV)。对非绝热势能面的地形特征进行了表征,发现这些表面对于动力学计算来说足够平滑。确定了[具体表面1]和[具体表面2]之间锥形交叉的交叉缝。基于这种新的解析非绝热势能面,进行了含时波包计算以研究该反应的机理。在低碰撞能量下,产物LiH分子倾向于前向散射,而在高碰撞能量下,前向和后向散射同时存在。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/43c7/4850413/5aad16853116/srep25083-f1.jpg

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