Department of Chemistry , Indian Institute of Technology Delhi , Hauz Khas, New Delhi 110016 , India.
J Phys Chem B. 2019 Aug 1;123(30):6543-6553. doi: 10.1021/acs.jpcb.9b03950. Epub 2019 Jul 23.
Recent experimental and first-principles simulation studies have shown that in liquid phase of ethylene glycol (EG), an equilibrium between both more prevalent conformers and less probable conformers of EG molecule exists. Gleaning into the complexities faced during classical molecular dynamics (MD) simulations of condensed phase EG due to its conformational richness and considering the aforesaid observations, here we propose a refined force-field for EG molecule for atomistic MD studies. By employing the refined parameters, we have thoroughly investigated the structure and dynamics of pure EG liquid and its aqueous mixtures and compared the results with the available experimental data. The proposed force-field justifies the important role played by intra- and intermolecular hydrogen bonding rendered by EG molecules. The simulated X-ray scattering structure function for pure EG liquid at 298 K is found to be in excellent agreement with experimental X-ray scattering structure function which precisely confirms the ability of the proposed force-field to mimic the structure of liquid phase EG. Additionally, the accuracy of the refined force-field for the microscopic dynamics and self-diffusion coefficient of pure as well as aqueous EG were also assessed here. Temperature dependence of hydrogen bonding interactions and their dynamics reveals that with increasing temperature the intermolecular hydrogen bonds in pure ethylene glycol becomes weaker and consequently render faster dynamics. In aqueous mixture, intermolecular hydrogen bonding interaction between EG molecules tends to decrease with decrease in ethylene glycol mole fraction due to invasion of water.
最近的实验和第一性原理模拟研究表明,在乙二醇(EG)的液相中,EG 分子的两种更常见的构象和不太可能的构象之间存在平衡。考虑到经典分子动力学(MD)模拟 EG 凝聚相时面临的复杂性,以及 EG 分子构象丰富度,我们提出了一个改进的 EG 分子力场,用于原子 MD 研究。通过使用改进的参数,我们彻底研究了纯 EG 液体及其水混合物的结构和动力学,并将结果与现有实验数据进行了比较。所提出的力场证明了 EG 分子内部和分子间氢键所起的重要作用。模拟的纯 EG 液体在 298 K 时的 X 射线散射结构函数与实验 X 射线散射结构函数非常吻合,这精确地证实了所提出的力场模拟 EG 液相结构的能力。此外,还评估了改进力场对纯 EG 以及 EG 水溶液的微观动力学和自扩散系数的准确性。氢键相互作用和动力学的温度依赖性表明,随着温度的升高,纯乙二醇中的分子间氢键变弱,从而导致更快的动力学。在水混合物中,由于水的入侵,EG 分子之间的分子间氢键相互作用趋于随着 EG 摩尔分数的降低而减小。