Liu Yang, Huang Yin, Ma Jianyi, Li Jun
School of Chemistry and Chemical Engineering, Chongqing University , Chongqing 400044, China.
Institute of Atomic and Molecular Physics, Sichuan University , Chengdu, Sichuan 610065, China.
J Phys Chem A. 2018 Feb 15;122(6):1521-1530. doi: 10.1021/acs.jpca.7b11483. Epub 2018 Feb 6.
Collision energy transfer plays an important role in gas phase reaction kinetics and relaxation of excited molecules. However, empirical treatments are generally adopted for the collisional energy transfer in the master equation based approach. In this work, classical trajectory approach is employed to investigate the collision energy transfer dynamics in the CH-Ne system. The entire potential energy surface is described as the sum of the CH potential and interaction potential between CH and Ne. It is highlighted that both parts of the entire potential are highly accurate. In particular, the interaction potential is fit to ∼41 300 configurations determined at the level of CCSD(T)-F12a/cc-pCVTZ-F12 with the counterpoise correction. Collision energy transfer dynamics are then carried out on this benchmark potential and the widely used Lennard-Jones and Buckingham interaction potentials. Energy transfers and related probability densities at different collisional energies are reported and discussed.
碰撞能量转移在气相反应动力学和激发分子的弛豫过程中起着重要作用。然而,在基于主方程的方法中,对于碰撞能量转移通常采用经验处理方法。在这项工作中,采用经典轨迹方法研究CH-Ne体系中的碰撞能量转移动力学。整个势能面被描述为CH势能与CH和Ne之间相互作用势能之和。需要强调的是,整个势能的这两部分都具有很高的精度。特别是,相互作用势能与在CCSD(T)-F12a/cc-pCVTZ-F12水平并采用平衡校正确定的约41300个构型相拟合。然后在这个基准势能以及广泛使用的 Lennard-Jones 和 Buckingham 相互作用势能上进行碰撞能量转移动力学研究。报告并讨论了不同碰撞能量下的能量转移和相关概率密度。