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通过硬碰撞荣耀散射在振动非弹性Ar + N碰撞中的受挫电荷转移

Frustrated charge transfer in vibrationally inelastic Ar+N collisions via hard collision glory scattering.

作者信息

Zhang Guodong, Lu Dandan, Cheng Min, Guo Hua, Gao Hong

机构信息

Beijing National Laboratory for Molecular Sciences (BNLMS), Institute of Chemistry, Chinese Academy of Sciences, Beijing, China.

University of Chinese Academy of Sciences, Beijing, China.

出版信息

Nat Commun. 2024 Sep 18;15(1):8177. doi: 10.1038/s41467-024-52530-z.

Abstract

Vibrational energy transfer in collisions between ions and neutrals is a fundamental process in interstellar media, planetary atmospheres, and plasmas. The conventional wisdom is that glancing collisions with large impact parameters are forward-scattered with low vibrational excitation, while hard collisions with small impact parameters are sideway- or backward-scattered with relatively high vibrational excitation. Here, we report experimental observations with a three-dimensional velocity-map imaging crossed-beam apparatus in the inelastic scattering process Ar+N(v'' = 0, J'')→Ar+N(v', J'), where all the vibrationally excited N products are dominated by forward scattering, contradicting the textbook model. Trajectory surface hopping calculations not only reproduced the experimental observation qualitatively, but also revealed that the vibrational excitation mainly occurs through a transient charge-transfer process. The hard collision glory mechanism, which has so far only been observed in inelastic rotational energy transfer between neutrals, is shown to play a major role for vibrational excitation in the inelastic Ar+N collision, via the frustrated charge transfer process.

摘要

离子与中性粒子碰撞中的振动能量转移是星际介质、行星大气和等离子体中的一个基本过程。传统观点认为,具有大碰撞参数的掠射碰撞会以低振动激发向前散射,而具有小碰撞参数的硬碰撞会以相对高的振动激发侧向或向后散射。在此,我们报告了使用三维速度映射成像交叉束装置对非弹性散射过程Ar + N(v'' = 0, J'')→Ar + N(v', J')进行的实验观测,其中所有振动激发的N产物都以向前散射为主,这与教科书模型相矛盾。轨迹表面跳跃计算不仅定性地再现了实验观测结果,还揭示了振动激发主要通过瞬态电荷转移过程发生。迄今为止仅在中性粒子之间的非弹性转动能量转移中观察到的硬碰撞荣耀机制,通过受挫电荷转移过程,被证明在Ar + N非弹性碰撞中的振动激发中起主要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9e7f/11408667/d8b513c44d94/41467_2024_52530_Fig1_HTML.jpg

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