Institut für Ionenphysik und Angewandte Physik, Universität Innsbruck, Innsbruck, Austria.
Department of Optics, Palacký University, Olomouc, Czech Republic.
Nature. 2023 Mar;615(7952):425-429. doi: 10.1038/s41586-023-05727-z. Epub 2023 Mar 1.
Quantum tunnelling reactions play an important role in chemistry when classical pathways are energetically forbidden, be it in gas-phase reactions, surface diffusion or liquid-phase chemistry. In general, such tunnelling reactions are challenging to calculate theoretically, given the high dimensionality of the quantum dynamics, and also very difficult to identify experimentally. Hydrogenic systems, however, allow for accurate first-principles calculations. In this way the rate of the gas-phase proton-transfer tunnelling reaction of hydrogen molecules with deuterium anions, H + D → H + HD, has been calculated, but has so far lacked experimental verification. Here we present high-sensitivity measurements of the reaction rate carried out in a cryogenic 22-pole ion trap. We observe an extremely low rate constant of (5.2 ± 1.6) × 10 cm s. This measured value agrees with quantum tunnelling calculations, serving as a benchmark for molecular theory and advancing the understanding of fundamental collision processes. A deviation of the reaction rate from linear scaling, which is observed at high H densities, can be traced back to previously unobserved heating dynamics in radiofrequency ion traps.
量子隧穿反应在化学中起着重要作用,特别是在经典途径在能量上被禁止的情况下,无论是在气相反应、表面扩散还是液相化学中。一般来说,由于量子动力学的高维性,这种隧穿反应在理论上很难计算,而且在实验上也很难识别。然而,类氢体系允许进行精确的第一性原理计算。通过这种方式,计算了氢分子与氘阴离子的气相质子转移隧穿反应 H + D → H + HD 的速率,但到目前为止还缺乏实验验证。在这里,我们在低温 22 极离子阱中进行了高灵敏度的反应速率测量。我们观察到一个非常低的速率常数为(5.2 ± 1.6) × 10 cm s。该测量值与量子隧穿计算一致,为分子理论提供了基准,并推进了对基本碰撞过程的理解。在高 H 密度下观察到的反应速率偏离线性标度的现象可以追溯到以前在射频离子阱中未观察到的加热动力学。