首页> 外文期刊>The Journal of Chemical Physics >ArnHF van der Waals clusters revisited: II. Energetics and HF vibrational frequency shifts from diffusion Monte Carlo calculations on additive and nonadditive potential-energy surfaces for n=1-12
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ArnHF van der Waals clusters revisited: II. Energetics and HF vibrational frequency shifts from diffusion Monte Carlo calculations on additive and nonadditive potential-energy surfaces for n=1-12

机译:再次回顾了ArnHF van der Waals集群:II。 n = 12时加性和非加性势能面的扩散蒙特卡罗计算得出的能量学和HF振动频率偏移

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The ground-state energies and HF vibrational frequency shifts of ArnHF clusters have been calculated on the nonadditive potential-energy surfaces (PESs) for n=2-7 and on the pairwise-additive PESs for the clusters with n=1-12, using the diffusion Monte Carlo (DMC) method. For n>3, the calculations have been performed for the lowest-energy isomer and several higher-lying isomers which are the closest in energy. They provide information about the isomer dependence of the HF redshift, and enable direct comparison with the experimental data recently obtained in helium nanodroplets. The agreement between theory and experiment is excellent, in particular, for the nonadditive DMC redshifts. The relative, incremental redshifts are reproduced accurately even at the lower level of theory, i.e., the DMC and quantum five-dimensional (rigid Ar-n) calculations on the pairwise-additive PESs. The nonadditive interactions make a significant contribution to the frequency shift, on the order of 10%-12%, and have to be included in the PESs in order for the theory to yield accurate magnitude of the HF redshift. The energy gaps between the DMC ground states of the cluster isomers are very different from the energy separation of their respective minima on the PES, due to the considerable variations in the intermolecular zero-point energy of different ArnHF isomers. (C) 2005 American Institute of Physics.
机译:使用n = 2-7的非加性势能面(PESs)和n = 1-12的成对加性PESs计算了ArnHF团簇的基态能量和HF振动频移,使用扩散蒙特卡罗(DMC)方法。对于n> 3,已对能量最低的异构体和能量最接近的几种较高异构体进行了计算。它们提供了有关HF红移的异构体依赖性的信息,并可以与最近在氦纳米液滴中获得的实验数据进行直接比较。理论与实验之间的一致性非常好,尤其是对于非加性DMC红移。即使在较低的理论水平上,即在成对加成的PES上进行DMC和量子五维(刚性Ar-n)计算时,也可以准确地再现相对的增量红移。非加性相互作用对频移做出了重大贡献,约为10%-12%,并且必须包含在PES中才能使该理论产生HF红移的准确幅度。簇异构体的DMC基态之间的能隙与其在PES上各自最小值的能级分离有很大不同,这是由于不同ArnHF异构体的分子间零点能量有很大差异。 (C)2005美国物理研究所。

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