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Diffusion of hydrogen fluoride in solid parahydrogen

机译:氟化氢在固体对氢中的扩散

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We studied diffusion of hydrogen fluoride (HF) in solid parahydrogen (pH_2) around 4 K. Diffusion rates were determined from time dependence of FT-IR spectra of HF monomers. The absorption of HF monomers shows temporal decay due to dimerization reaction via diffusion. It was found that the rates are affected by the sample temperature, the initial HF concentration, and annealing of samples. The observed non-Arrhenius-type temperature dependence suggests that the diffusion is dominated by a quantum tunneling process, that is, "quantum diffusion." Deceleration of the diffusion in condensed samples and acceleration in annealed samples were also observed. These results can be attributed to the fact that lower periodicity of samples due to impurities or defects suppresses the quantum tunneling. It seems to be difficult to explain the observed dependences by three possible diffusion mechanisms, exchange of chemical bonds, direct cyclic exchange, and exchange with mobile vacancy. Therefore, we propose a hypothetical mechanism by exchange of vacancies originating from quantum effect.
机译:我们研究了氟化氢(HF)在4 K附近的固体对氢(pH_2)中的扩散。扩散速率是由HF单体的FT-IR光谱随时间的变化确定的。 HF单体的吸收显示出由于通过扩散的二聚反应引起的时间衰减。发现速率受样品温度,初始HF浓度和样品退火的影响。观察到的非阿伦尼乌斯型温度依赖性表明,该扩散主要由量子隧穿过程控制,即“量子扩散”。还观察到冷凝样品中扩散的减少和退火样品中的加速。这些结果可以归因于以下事实:由于杂质或缺陷而导致的较低的样品周期性抑制了量子隧穿。似乎很难通过三种可能的扩散机制,化学键的交换,直接的循环交换以及与空位的交换来解释所观察到的依赖性。因此,我们通过交换源自量子效应的空位提出了一种假设机制。

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