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用于氢氟碳分子模拟的经典力场。在聚(偏二氟乙烯)中气体溶解度研究的应用。

Classical force field for hydrofluorocarbon molecular simulations. Application to the study of gas solubility in poly(vinylidene fluoride).

机构信息

IFP Energies nouvelles, 1-4 Avenue de Bois-Préau, 92852 Rueil-Malmaison, France.

出版信息

J Phys Chem A. 2015 Jan 8;119(1):140-51. doi: 10.1021/jp506895p. Epub 2014 Dec 19.

Abstract

A classical all-atoms force field for molecular simulations of hydrofluorocarbons (HFCs) has been developed. Lennard-Jones force centers plus point charges are used to represent dispersion-repulsion and electrostatic interactions. Parametrization of this force field has been performed iteratively using three target properties of pentafluorobutane: the quantum energy of an isolated molecule, the dielectric constant in the liquid phase, and the compressed liquid density. The accuracy and transferability of this new force field has been demonstrated through the simulation of different thermophysical properties of several fluorinated compounds, showing significant improvements compared to existing models. This new force field has been applied to study solubilities of several gases in poly(vinylidene fluoride) (PVDF) above the melting temperature of this polymer. The solubility of CH4, CO2, H2S, H2, N2, O2, and H2O at infinite dilution has been computed using test particle insertions in the course of a NpT hybrid Monte Carlo simulation. For CH4, CO2, and their mixtures, some calculations beyond the Henry regime have also been performed using hybrid Monte Carlo simulations in the osmotic ensemble, allowing both swelling and solubility determination. An ideal mixing behavior is observed, with identical solubility coefficients in the mixtures and in pure gas systems.

摘要

已经开发出了一种用于全氟碳化合物(HFCs)分子模拟的经典原子力场。使用 Lennard-Jones 力心加点电荷来表示色散-排斥和静电相互作用。该力场的参数化是通过迭代使用五氟丁烷的三个目标性质来完成的:孤立分子的量子能、液相介电常数和压缩液体密度。通过模拟几种氟化化合物的不同热物理性质,证明了这种新力场的准确性和可转移性,与现有模型相比有了显著的改进。该新力场已应用于研究几种气体在聚偏二氟乙烯(PVDF)中的溶解度,高于该聚合物的熔点。使用 NpT 混合 Monte Carlo 模拟中的测试粒子插入,计算了无限稀释时 CH4、CO2、H2S、H2、N2、O2 和 H2O 的溶解度。对于 CH4、CO2 及其混合物,还使用渗透压集合中的混合 Monte Carlo 模拟进行了一些超越亨利定律的计算,允许进行溶胀和溶解度的测定。观察到理想的混合行为,混合物和纯气体系统中的溶解度系数相同。

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