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Unraveling quantum mechanical effects in water using isotopic fractionation

机译:利用同位素分馏揭示水中的量子力学效应

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摘要

When two phases of water are at equilibrium, the ratio of hydrogen isotopes in each is slightly altered because of their different phase affinities. This isotopic fractionation process can be utilized to analyze water’s movement in the world’s climate. Here we show that equilibrium fractionation ratios, an entirely quantum mechanical property, also provide a sensitive probe to assess the magnitude of nuclear quantum fluctuations in water. By comparing the predictions of a series of water models, we show that those describing the OH chemical bond as rigid or harmonic greatly overpredict the magnitude of isotope fractionation. Models that account for anharmonicity in this coordinate are shown to provide much more accurate results because of their ability to give partial cancellation between inter- and intramolecular quantum effects. These results give evidence of the existence of competing quantum effects in water and allow us to identify how this cancellation varies across a wide-range of temperatures. In addition, this work demonstrates that simulation can provide accurate predictions and insights into hydrogen fractionation.
机译:当水的两相处于平衡状态时,由于它们的相亲合力不同,每相中氢同位素的比率都会略有变化。同位素分馏过程可用于分析世界气候中水的运动。在这里,我们显示出平衡分馏比,一种完全的量子力学性质,也提供了一种敏感的探针来评估水中核量子涨落的幅度。通过比较一系列水模型的预测,我们发现那些将OH化学键描述为刚性或谐波的模型大大预测了同位素分馏的幅度。由于能够在分子间和分子内量子效应之间提供部分抵消的能力,因此显示了在该坐标中解释非谐性的模型可提供更为准确的结果。这些结果提供了在水中存在竞争性量子效应的证据,并使我们能够确定这种抵消在很大温度范围内如何变化。此外,这项工作还表明,模拟可以为氢分馏提供准确的预测和见解。

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