Correlated rotational excitations in NO-CO inelastic collisions.

Guoqiang Tang, Matthieu Besemer, J. Onvlee, T. Karman, A. van der Avoird, G. Groenenboom, S. V. D. van de Meerakker
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引用次数: 3

Abstract

We present a joint experimental and theoretical study of rotationally inelastic collisions between NO (X2Π1/2, ν = 0, j = 1/2, f) radicals and CO (X1Σ+, ν = 0, j = 0) molecules at a collision energy of 220 cm-1. State-to-state scattering images for excitation of NO radicals into various final states were measured with high resolution by combining the Stark deceleration and velocity map imaging techniques. The high image resolution afforded the observation of correlated rotational excitations of NO-CO pairs, which revealed a number of striking scattering phenomena. The so-called "parity-pair" transitions in NO are found to have similar differential cross sections, independent of the concurrent excitation of CO, extending this well-known effect for collisions between NO and rare gas atoms into the realm of bimolecular collisions. Forward scattering is found for collisions that induce a large amount of rotational energy transfer (in either NO, CO, or both), which require low impact parameters to induce sufficient energy transfer. This observation is interpreted in terms of the recently discovered hard collision glory scattering mechanism, which predicts the forward bending of initially backward receding trajectories if the energy uptake in the collision is substantial in relation to the collision energy. The experimental results are in good agreement with the predictions from coupled-channels quantum scattering calculations based on an ab initio NO-CO potential energy surface.
NO-CO非弹性碰撞中的相关旋转激励。
本文对NO (X2Π1/2, ν = 0, j = 1/2, f)自由基与CO (X1Σ+, ν = 0, j = 0)分子在220 cm-1碰撞能量下的旋转非弹性碰撞进行了实验和理论联合研究。结合Stark减速和速度图成像技术,以高分辨率测量了NO自由基激发到不同终态的状态间散射图像。高分辨率的图像提供了NO-CO对相关旋转激发的观测,揭示了许多引人注目的散射现象。NO中所谓的“奇偶对”跃迁被发现具有类似的微分截面,独立于CO的同步激发,将这种众所周知的NO与稀有气体原子碰撞效应扩展到双分子碰撞领域。前向散射被发现用于诱导大量旋转能量转移的碰撞(在NO, CO或两者中),这需要低的撞击参数来诱导足够的能量转移。这一观察结果是根据最近发现的硬碰撞光荣散射机制来解释的,该机制预测,如果碰撞中的能量摄取与碰撞能量相关,则最初向后后退的轨迹将向前弯曲。实验结果与基于从头算NO-CO势能面的耦合通道量子散射计算结果吻合较好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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