Department of Chemical and Process Engineering , University of Strathclyde , Glasgow G1 1XQ , United Kingdom.
J Chem Theory Comput. 2019 Feb 12;15(2):1065-1078. doi: 10.1021/acs.jctc.8b01115. Epub 2018 Dec 31.
Classical nonpolarizable water models play a crucial role in computer simulations due to their simplicity and computational efficiency. However, the neglect of explicit polarization can jeopardize their accuracy and predictive capabilities, particularly for properties that involve a change in electrostatic environment (e.g., phase changes). In order to mitigate this intrinsic shortcoming, highly simplified analytical polarization corrections describing the distortion of the molecular dipole are commonly applied in force field development and validation. In this paper, we perform molecular dynamics simulations and thermodynamic integration to show that applying the current state-of-the-art polarization corrections leads to a systematic inability of current nonpolarizable water models to simultaneously predict the experimental enthalpy of vaporization and hydration free energy. We go on to extend existing theories of polarization and combine them with data from recent ab initio molecular dynamics simulations to obtain a better estimate of the real contribution of polarization to phase-change energies and free energies. Our results show that for strongly polar molecules like water, the overall polarization correction is close to zero, resulting from a cancellation of multipole distortion and purely electronic polarization effects. In light of these findings, we suggest that parametrization of classical nonpolarizable models of water should be revisited in an attempt to simultaneously describe phase-change energetics and other thermodynamic and structural properties of the liquid.
经典非极化水分子模型由于其简单性和计算效率在计算机模拟中起着至关重要的作用。然而,忽略明确的极化作用会危及它们的准确性和预测能力,特别是对于涉及静电环境变化的性质(例如,相变化)。为了减轻这种内在的缺点,在力场的开发和验证中,通常应用高度简化的分析性极化校正来描述分子偶极子的变形,以弥补这种内在的缺点。在本文中,我们进行分子动力学模拟和热力学积分,以证明当前最先进的极化校正的应用导致当前非极化水分子模型无法同时预测实验蒸发热和水合自由能。我们继续扩展极化的现有理论,并将其与最近从头算分子动力学模拟的数据相结合,以更好地估计极化对相变能和自由能的实际贡献。我们的结果表明,对于像水这样的强极性分子,整体极化校正接近零,这是由于多极变形和纯电子极化效应的抵消所致。鉴于这些发现,我们建议重新审视水的经典非极化模型的参数化,以尝试同时描述相变能学和液体的其他热力学和结构性质。