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(H(D),HD)在两个势能面上的量子态-态碰撞研究。

Quantum state-to-state study for (H(D),HD) collisions on two potential energy surfaces.

机构信息

Department of Physics, Taiyuan University of Science and Technology, 030024, Taiyuan, China.

出版信息

Phys Chem Chem Phys. 2019 Mar 27;21(13):7196-7207. doi: 10.1039/c8cp07824f.

Abstract

Quantum time-dependent wave-packet calculations have been carried out to explore the state-to-state dynamics of the ion-molecule (H-(D-),HD) collisions on two accurate ab initio potential energy surfaces in the collision energy range 0.2-1.2 eV. Total and final state-resolved integral and differential cross sections are elaborated in detail. The differential cross sections vary substantially with the collision energy, turning from predominantly backward-scattering at low collision energies to forward and sideways scattering bias at relatively high collision energies. The rebound, stripping and time-delayed mechanisms are found to be possible in (H-(D-),HD) collisions. A set of quasi-classical trajectory calculations were performed, and the results indicate that the backward-scattering peak is caused by the low impact parameter trajectories, while the trajectories of high impact parameter are responsible for the forward scattering. A set of representative state-to-state differential cross sections at collision energies 0.6 and 1.2 eV are also presented. Different reaction mechanisms are dominant in (H-(D-),HD) collisions at different collision energies, resulting in different product rovibrational state distributions. The differences between the dynamics results based on the two potential energy surfaces are also discussed.

摘要

已进行量子含时波包计算,以探索离子分子(H-(D-),HD)碰撞在碰撞能范围为 0.2-1.2 eV 的两个精确从头算势能面上的态态动力学。详细阐述了总态和终态分辨积分和微分截面。微分截面随碰撞能发生显著变化,从低碰撞能时主要向后散射转变为相对高碰撞能时的前向和侧向散射偏置。在(H-(D-),HD)碰撞中发现了回弹、剥离和时滞机制。进行了一组准经典轨迹计算,结果表明,后向散射峰是由低碰撞参数轨迹引起的,而高碰撞参数轨迹则导致前向散射。还给出了碰撞能为 0.6 和 1.2 eV 的一组代表性态态微分截面。在不同的碰撞能下,不同的反应机制在(H-(D-),HD)碰撞中占主导地位,导致不同的产物转动振动态分布。还讨论了基于两个势能面的动力学结果之间的差异。

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Quantum state-to-state study for (H(D),HD) collisions on two potential energy surfaces.
Phys Chem Chem Phys. 2019 Mar 27;21(13):7196-7207. doi: 10.1039/c8cp07824f.

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