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Direct assessment of quantum nuclear effects on hydrogen bond strength by constrained-centroid ab initio path integral molecular dynamics

机译:约束质心从头算路径积分分子动力学直接评估量子核对氢键强度的影响

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The impact of quantum nuclear effects on hydrogen (H-) bond strength has been inferred in earlier work from bond lengths obtained from path integral molecular dynamics (PIMD) simulations. To obtain a direct quantitative assessment of such effects, we use constrained-centroid PIMD simulations to calculate the free energy changes upon breaking the H-bonds in dimers of HF and water. Comparing ab initio simulations performed using PIMD and classical nucleus molecular dynamics (MD), we find smaller dissociation free energies with the PIMD method. Specifically, at 50 K, the H-bond in (HF)_2 is about 30% weaker when quantum nuclear effects are included, while that in (H _2 O)_2 is about 15% weaker. In a complementary set of simulations, we compare unconstrained PIMD and classical nucleus MD simulations to assess the influence of quantum nuclei on the structures of these systems. We find increased heavy atom distances, indicating weakening of the H-bond consistent with that observed by direct calculation of the free energies of dissociation.
机译:在较早的工作中,从路径积分分子动力学(PIMD)模拟获得的键长可以推断出量子核效应对氢(H-)键强度的影响。为了获得此类效应的直接定量评估,我们使用质心质心PIMD模拟来计算在HF和水的二聚体中打破H键时的自由能变化。比较使用PIMD和经典原子核分子动力学(MD)进行的从头算模拟,我们发现使用PIMD方法的解离自由能较小。具体地,在50 K下,当包括量子核效应时,(HF)_2中的H键弱约30%,而(H _2 O)_2中的H键弱约15%。在一组补充模拟中,我们比较了无约束PIMD和经典核MD模拟,以评估量子核对这些系统结构的影响。我们发现增加的重原子距离,表明氢键的减弱与通过直接计算解离自由能所观察到的一致。

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