Dörfler Alexander D, Eberle Pascal, Koner Debasish, Tomza Michał, Meuwly Markus, Willitsch Stefan
Department of Chemistry, University of Basel, Klingelbergstrasse 80, 4056, Basel, Switzerland.
Faculty of Physics, University of Warsaw, Pasteura 5, 02-093, Warsaw, Poland.
Nat Commun. 2019 Nov 28;10(1):5429. doi: 10.1038/s41467-019-13218-x.
The investigation of cold interactions between ions and neutrals has recently emerged as a new scientific frontier at the interface of physics and chemistry. Here, we report a study of charge-transfer (CT) collisions of Rb atoms with N[Formula: see text] and O[Formula: see text] ions in the mK regime using a dynamic ion-neutral hybrid trapping experiment. We observe markedly different CT kinetics and dynamics for the different systems and reaction channels studied. While the kinetics in some channels are consistent with classical capture theory, others show distinct non-universal dynamics. The experimental results are interpreted with the help of classical-capture, quasiclassical-trajectory and quantum-scattering calculations using ab-initio potentials for the highly excited molecular states involved. The theoretical analysis reveals an intricate interplay between short- and long-range effects in the different reaction channels which ultimately determines the CT dynamics and rates. Our results illustrate salient mechanisms that determine the efficiency of cold molecular CT reactions.
离子与中性粒子间冷相互作用的研究近来已成为物理与化学交叉领域的一个新的科学前沿。在此,我们报告一项利用动态离子 - 中性混合俘获实验对处于毫开尔文温度范围的铷原子与N⁺和O⁺离子的电荷转移(CT)碰撞进行的研究。我们观察到,对于所研究的不同系统和反应通道,CT动力学和动态过程存在显著差异。虽然某些通道中的动力学与经典俘获理论一致,但其他通道则呈现出独特的非普适动力学。借助经典俘获、准经典轨迹以及使用涉及高激发分子态的从头算势进行的量子散射计算,对实验结果进行了解释。理论分析揭示了不同反应通道中短程和长程效应之间复杂的相互作用,这最终决定了CT动力学和速率。我们的结果阐明了决定冷分子CT反应效率的显著机制。