Department of Chemistry, University of Missouri, Columbia, Missouri 65211, USA.
J Chem Phys. 2012 Jan 28;136(4):044514. doi: 10.1063/1.3677880.
A new force field for dimethyl ether (DME) based on the Lennard-Jones (LJ) 12-6 plus point charge functional form is presented in this work. This force field reproduces experimental saturated liquid and vapor densities, vapor pressures, heats of vaporization, and critical properties to within the statistical uncertainty of the combined experimental and simulation measurements for temperatures between the normal boiling and critical point. Critical parameters and normal boiling point are predicted to within 0.1% of experiment. This force field is used in grand canonical histogram reweighting Monte Carlo simulations to predict the pressure composition diagrams for the binary mixtures DME + SO(2) at 363.15 K and DME + CO(2) at 335.15 and 308.15 K. For the DME + SO(2) mixture, simulation is able to qualitatively reproduce the minimum pressure azeotropy observed experimentally for this mixture, but quantitative errors exist, suggesting that multibody effects may be important in this system. For the DME + CO(2) mixture, simulation is able to predict the pressure-composition behavior within 1% of experimental data. Simulations in the isobaric-isothermal ensemble are used to determine the microstructure of DME + SO(2) and DME + CO(2) mixtures. The DME + SO(2) shows weak pairing between DME and SO(2) molecules, while no specific pairing or aggregation is observed for mixtures of DME + CO(2).
本工作提出了一种基于 Lennard-Jones(LJ)12-6 加点电荷函数形式的二甲醚(DME)新力场。该力场再现了实验饱和液体和蒸汽密度、蒸汽压、汽化热和临界性质,其温度范围从正常沸点到临界点,在实验和模拟测量的统计不确定性范围内。临界参数和正常沸点的预测值与实验值相差 0.1%以内。该力场用于巨正则历史重加权蒙特卡罗模拟,以预测 363.15 K 下的 DME+SO2 和 335.15 和 308.15 K 下的 DME+CO2 二元混合物的压力组成图。对于 DME+SO2 混合物,模拟能够定性地再现实验观察到的该混合物的最小压力共沸,但存在定量误差,表明多体效应在该体系中可能很重要。对于 DME+CO2 混合物,模拟能够在实验数据的 1%以内预测压力-组成行为。等压-等温热力学模拟用于确定 DME+SO2 和 DME+CO2 混合物的微观结构。DME+SO2 显示出 DME 和 SO2 分子之间的弱配对,而对于 DME+CO2 混合物则没有观察到特定的配对或聚集。