Departments of Chemistry, University of California, Berkeley, California 94720, USA.
J Chem Phys. 2017 Oct 28;147(16):161721. doi: 10.1063/1.4999905.
In this work, we evaluate the accuracy of the classical AMOEBA model for representing many-body interactions, such as polarization, charge transfer, and Pauli repulsion and dispersion, through comparison against an energy decomposition method based on absolutely localized molecular orbitals (ALMO-EDA) for the water trimer and a variety of ion-water systems. When the 2- and 3-body contributions according to the many-body expansion are analyzed for the ion-water trimer systems examined here, the 3-body contributions to Pauli repulsion and dispersion are found to be negligible under ALMO-EDA, thereby supporting the validity of the pairwise-additive approximation in AMOEBA's 14-7 van der Waals term. However AMOEBA shows imperfect cancellation of errors for the missing effects of charge transfer and incorrectness in the distance dependence for polarization when compared with the corresponding ALMO-EDA terms. We trace the larger 2-body followed by 3-body polarization errors to the Thole damping scheme used in AMOEBA, and although the width parameter in Thole damping can be changed to improve agreement with the ALMO-EDA polarization for points about equilibrium, the correct profile of polarization as a function of intermolecular distance cannot be reproduced. The results suggest that there is a need for re-examining the damping and polarization model used in the AMOEBA force field and provide further insights into the formulations of polarizable force fields in general.
在这项工作中,我们通过将经典 AMOEBA 模型与基于绝对局域分子轨道(ALMO-EDA)的能量分解方法进行比较,评估了该模型在表示多体相互作用(如极化、电荷转移、Paul 排斥和色散)方面的准确性,该方法用于三聚水和各种离子-水体系。当分析这里研究的离子-水三聚体系统的多体展开的 2 体和 3 体贡献时,在 ALMO-EDA 下,Paul 排斥和色散的 3 体贡献可以忽略不计,从而支持 AMOEBA 的 14-7 范德华项中对加和近似的有效性。然而,与相应的 ALMO-EDA 项相比,当涉及电荷转移的缺失效应和极化的距离依赖性不正确时,AMOEBA 显示出对错误的不完全抵消。我们将较大的 2 体和 3 体极化误差归因于 AMOEBA 中使用的 Thole 阻尼方案,尽管可以改变 Thole 阻尼中的宽度参数以改善与 ALMO-EDA 极化的一致性,但无法再现作为分子间距离函数的正确极化轮廓。结果表明,有必要重新检查 AMOEBA 力场中使用的阻尼和极化模型,并为一般的极化力场的配方提供更深入的了解。