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深度非弹性分子碰撞中的 glory 散射。

Glory scattering in deeply inelastic molecular collisions.

机构信息

Institute for Molecules and Materials, Radboud University, Nijmegen, the Netherlands.

Key Laboratory of Fundamental Physical Quantities Measurement of Ministry of Education, School of Physics, Huazhong University of Science and Technology, Wuhan, China.

出版信息

Nat Chem. 2022 Jun;14(6):664-669. doi: 10.1038/s41557-022-00907-2. Epub 2022 Mar 21.

Abstract

For molecular collisions, the deflection of a molecule's trajectory provides one of the most sensitive probes of the interaction potential and there are general rules of thumb that relate the direction of deflection to precollision conditions. Following intuition, forward scattering results from glancing collisions, whereas near head-on collisions result in back scattering. Here we present the observation of forward scattering in inelastic processes that defies this common wisdom. For deeply inelastic collisions between NO radicals and CO or HD molecules, we observed forward scattering in fully resolved pair-correlated differential cross-sections, despite the low impact parameters that are needed to induce a sufficient energy transfer. We rationalized these findings by extending the textbook model of hard-sphere scattering-taking inelastic energy transfer into account-and attribute the forward scattering to glory-type trajectories caused by attractive forces. This phenomenon, which we refer to as hard-collision glory scattering, is predicted to be ubiquitous. We derive under which conditions hard-collision glory scattering occurs and retrospectively identify such behaviour in previously studied systems.

摘要

对于分子碰撞,分子轨迹的偏折提供了相互作用势能最灵敏的探针之一,并且存在将偏折方向与预碰撞条件相关联的一般经验法则。根据直觉,前向散射来自掠射碰撞,而近正碰则导致后向散射。在这里,我们提出了一种违反这一常识的非弹性过程中的前向散射观察。对于 NO 自由基和 CO 或 HD 分子之间的深度非弹性碰撞,尽管需要低的冲击参数来诱导足够的能量转移,但我们仍在完全分辨的对关联微分截面中观察到前向散射。我们通过扩展硬球散射的教科书模型来合理化这些发现——考虑非弹性能量转移——并将前向散射归因于吸引力引起的荣耀型轨迹。我们将这种现象称为硬碰撞荣耀散射,它被预测是普遍存在的。我们推导出硬碰撞荣耀散射发生的条件,并在以前研究的系统中回顾性地识别出这种行为。

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