Universal Pairwise Interatomic van der Waals Potentials Based on Quantum Drude Oscillators

范德瓦尔斯力 极化率 物理 伦敦分散部队 偶极子 量子 从头算 势能 量子力学 统计物理学 分子
作者
Almaz Khabibrakhmanov,Dmitry V. Fedorov,Alexandre Tkatchenko
出处
期刊:Journal of Chemical Theory and Computation [American Chemical Society]
卷期号:19 (21): 7895-7907 被引量:14
标识
DOI:10.1021/acs.jctc.3c00797
摘要

Repulsive short-range and attractive long-range van der Waals (vdW) forces play an appreciable role in the behavior of extended molecular systems. When using empirical force fields, the most popular computational methods applied to such systems, vdW forces are typically described by Lennard-Jones-like potentials, which unfortunately have a limited predictive power. Here, we present a universal parameterization of a quantum-mechanical vdW potential, which requires only two free-atom properties─the static dipole polarizability α1 and the dipole-dipole C6 dispersion coefficient. This is achieved by deriving the functional form of the potential from the quantum Drude oscillator (QDO) model, employing scaling laws for the equilibrium distance and the binding energy, and applying the microscopic law of corresponding states. The vdW-QDO potential is shown to be accurate for vdW binding energy curves, as demonstrated by comparing to the ab initio binding curves of 21 noble-gas dimers. The functional form of the vdW-QDO potential has the correct asymptotic behavior at both zero and infinite distances. In addition, it is shown that the damped vdW-QDO potential can accurately describe vdW interactions in dimers consisting of group II elements. Finally, we demonstrate the applicability of the atom-in-molecule vdW-QDO model for predicting accurate dispersion energies for molecular systems. The present work makes an important step toward constructing universal vdW potentials, which could benefit (bio)molecular computational studies.

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