Núñez-Rojas Edgar, Aguilar-Pineda Jorge Alberto, Pérez de la Luz Alexander, de Jesús González Edith Nadir, Alejandre José
Conacyt-Departamento de Química, Universidad Autónoma Metropolitana-Iztapalapa , Av. San Rafael Atlixco 186, Col. Vicentina, 09340 Cuidad de México, México.
Departamento de Química, Universidad Autónoma Metropolitana-Iztapalapa , Av. San Rafael Atlixco 186, Col. Vicentina, 09340 Cuidad de México, México.
J Phys Chem B. 2018 Feb 8;122(5):1669-1678. doi: 10.1021/acs.jpcb.7b10970. Epub 2018 Jan 24.
The transferable potential for a phase equilibria force field in its united-atom version, TraPPE_UA, is evaluated for 41 polar liquids that include alcohols, thiols, ethers, sulfides, aldehydes, ketones, and esters to determine its ability to reproduce experimental properties that were not included in the parametrization procedure. The intermolecular force field parameters for pure components were fit to reproduce experimental boiling temperature, vapor-liquid coexisting densities, and critical point (temperature, density, and pressure) using Monte Carlo simulations in different ensembles. The properties calculated in this work are liquid density, heat of vaporization, dielectric constant, surface tension, volumetric expansion coefficient, and isothermal compressibility. Molecular dynamics simulations were performed in the gas and liquid phases, and also at the liquid-vapor interface. We found that relative error between calculated and experimental data is 1.2% for density, 6% for heat of vaporization, and 6.2% for surface tension, in good agreement with the experimental data. The dielectric constant is systematically underestimated, and the relative error is 37%. Evaluating the performance of the force field to reproduce the volumetric expansion coefficient and isothermal compressibility requires more experimental data.
对其联合原子版本TraPPE_UA中的相平衡力场的可转移潜力进行了评估,该评估针对41种极性液体展开,这些液体包括醇类、硫醇类、醚类、硫化物、醛类、酮类和酯类,目的是确定其再现未包含在参数化过程中的实验性质的能力。通过在不同系综中进行蒙特卡罗模拟,对纯组分的分子间力场参数进行拟合,以再现实验沸点温度、气液共存密度和临界点(温度、密度和压力)。在这项工作中计算的性质包括液体密度、汽化热、介电常数、表面张力、体积膨胀系数和等温压缩率。在气相和液相以及气液界面进行了分子动力学模拟。我们发现,计算数据与实验数据之间的相对误差对于密度为1.2%,对于汽化热为6%,对于表面张力为6.2%,与实验数据吻合良好。介电常数被系统地低估,相对误差为37%。评估力场再现体积膨胀系数和等温压缩率的性能需要更多的实验数据。