论文标题
从单体电子密度得出的精确转移极化模型
Accurate transferable polarization model derived from the monomer electron density
论文作者
论文摘要
数十年来,力场已被证明是分子模拟的必不可少的工具,这些工具无法触及AB-Initio方法。提高这些模拟准确性的最新努力集中在将多体相互作用纳入力场中。在这方面,我们提出了一个可转移的诱导偶极模型,该模型仅需要单体电子密度作为输入,而无需原子类型特定参数。引入了Slater偶极子,其宽度源自Ab-Initio单体密度。在我们的模型中引入了额外的交换 - 抑制相互作用,源自将偶极子与其他偶极子和基态电子密度的重叠。由于缺乏偶极子的空间范围阻止了重叠项的包含,因此这种相互作用以前已被忽略。表明这种相互作用的包含可显着改善三体能量的预测。我们的模型纳入了先前提出的非共价力场中,并在HSG和HBC6数据集中包含的二聚体的相互作用能量上进行了基准测试。此外,我们证明了模型向水的冷凝阶段的可传递性,以及Co $ _2 $和H $ _2 $ o分子与ZIF-8金属有机框架的相互作用。我们模型的固有可传递性使其广泛适用于上述金属有机框架等系统,在文献中没有针对极化模型的特定拟合参数。
Force field have for decades proven to be an indispensable tool for molecular simulations which are out of reach for ab-initio methods. Recent efforts to improve the accuracy of these simulations have focused on the inclusion of many-body interactions in force fields. In this regard, we propose a transferable inducible dipole model which requires only the monomer electron density as input, without the need for atom type specific parameters. Slater dipoles are introduced, the widths of which are derived from the ab-initio monomer density. An additional exchange-repulsion interaction is introduced in our model, originating from the overlap of the delocalized dipoles with other dipoles and the ground state electron density. This interaction has previously been neglected in point dipole models, as the lack of spatial extent of the dipoles prevents the inclusion of an overlap term. The inclusion of this interaction is shown to significantly improve the prediction of three-body energies. Our model is incorporated in a previously proposed non-covalent force field and is benchmarked on interaction energies of dimers contained in the hsg and hbc6 datasets. Furthermore, we demonstrate the transferability of our model to the condensed phase of water, and to the interaction of CO$_2$ and H$_2$O molecules with the ZIF-8 metal-organic framework. The inherent transferability of our model makes it widely applicable to systems like the aforementioned metal-organic frameworks, where no specifically fitted parameters for polarization models are available in the literature.