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On the formation of van der Waals complexes through three-body recombination

机译:通过三体重组形成van der Waals复合物

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In this work, we show that van der Waals molecules X-RG (where RG is the rare gas atom) may be created through direct three-body recombination collisions, i.e., X + RG + RG -> X-RG + RG. In particular, the three-body recombination rate at temperatures relevant for buffer gas cell experiments is calculated via a classical trajectory method in hyperspherical coordinates [Perez-Rios et al., J. Chem. Phys. 140, 044307 (2014)]. As a result, it is found that the formation of van der Waals molecules in buffer gas cells (1 K less than or similar to T less than or similar to 10 K) is dominated by the long-range tail (distances larger than the LeRoy radius) of the X-RG interaction. For higher temperatures, the short-range region of the potential becomes more significant. Moreover, we notice that the rate of formation of van der Walls molecules is of the same order of the magnitude independent of the chemical properties of X. As a consequence, almost any X-RG molecule may be created and observed in a buffer gas cell under proper conditions.
机译:在这项工作中,我们表明范德瓦尔斯分子X-RG(RG是稀有气体原子)可以通过直接三体复合碰撞产生,即X+RG+RG->X-RG+RG。特别是,在与缓冲气体电池实验相关的温度下,三体重组率是通过超球坐标下的经典轨迹法计算的[Perez Rios等人,J.Chem.Phys.140044307(2014)]。结果发现,缓冲气室中范德华分子(1K小于或类似于T小于或类似于10k)的形成主要由X-RG相互作用的长程尾(距离大于勒罗伊半径)控制。对于更高的温度,电势的短程区域变得更重要。此外,我们注意到范德瓦尔斯分子的形成速率与X的化学性质无关,具有相同的数量级。因此,在适当的条件下,几乎任何X-RG分子都可以在缓冲气体池中产生和观察。

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