论文标题

基于单中心多极扩展的灵活h $ _2 $ o分子的可转移潜在功能

Transferable Potential Function for Flexible H$_2$O Molecules Based on the Single Center Multipole Expansion

论文作者

Jónsson, Elvar Örn, Rasti, Soroush, Galynska, Marta, Meyer, Jörg, Jónsson, Hannes

论文摘要

提出了一个潜在功能,用于描述基于静电相互作用的单中心多极扩展(SCME)的柔性H $ _2 $ o分子的系统。该模型(称为SCME/F)包括分子四极力矩的变化以及偶极矩的变化,键长和角度变化,以便重现高级电子结构计算的结果。多极膨胀还包括固定的八极杆和六烷基的力矩,以及各向异性偶极偶极,偶极 - Quadrupole和Quadrupole- Quadrupole极化量张量。该模型包含五个与排斥相互作用和阻尼函数有关的可调节参数。调整它们的值以重现小簇的最低能量异构体,(h $ _2 $ o)$ _ n $,$ n = 2-6 $,以及ICE IH Crystal的测量属性。随后计算簇的各种异构体构型之间的能量差异表明,SCME/F与电子结构计算的结果良好一致,并且对先前呈现的刚性SCME潜在函数有了显着改善。分析集群的振动频率和冰IH晶体的结构特性表明,准确描述四极力矩与分子结构的变化的重要性。

A potential function is presented for describing a system of flexible H$_2$O molecules based on the single center multipole expansion (SCME) of the electrostatic interaction. The model, referred to as SCME/f, includes the variation of the molecular quadrupole moment as well as the dipole moment with changes in bond length and angle so as to reproduce results of high level electronic structure calculations. The multipole expansion also includes fixed octupole and hexadecapole moments, as well as anisotropic dipole-dipole, dipole-quadrupole and quadrupole-quadrupole polarizability tensors. The model contains five adjustable parameters related to the repulsive interaction and damping functions in the electrostatic and dispersion interactions. Their values are adjusted to reproduce the lowest energy isomers of small clusters, (H$_2$O)$_n$ with $n=2-6$, as well as measured properties of the ice Ih crystal. Subsequent calculations of the energy difference between the various isomer configurations of the clusters show that SCME/f gives good agreement with results of electronic structure calculations and represents a significant improvement over the previously presented rigid SCME potential function. Analysis of the vibrational frequencies of the clusters and structural properties of ice Ih crystal show the importance of accurately describing the variation of the quadrupole moment with molecular structure.

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