Gaur Anjali, Balasubramanian Sundaram
Chemistry and Physics of Materials Unit, Jawaharlal Nehru Centre for Advanced Scientific Research, Bangalore 560064, India.
Phys Chem Chem Phys. 2022 May 11;24(18):10985-10992. doi: 10.1039/d2cp00633b.
Periodic density functional theory based molecular dynamics simulations confirm the fraction of molecules in neat liquid ethylene glycol with their central OCCO dihedral in the conformation to be 21% at ambient conditions, while the rest are conformers. Using this result as a benchmark, two non-polarizable force fields are developed herein to reproduce the conformer populations in the liquid, an important aspect inadequately addressed in several generic force fields. The mean dipole moment of a molecule in the liquid is estimated to be about 40% enhanced over its value in the gas phase, a feature discerned AIMD simulations and fairly reproduced by our force fields. They are also shown to quantitatively predict all the physical properties of the liquid. Molecules present at the liquid-vapor interface of ethylene glycol are oriented with their methylene groups pointing towards the vapor phase, a requirement that enriches the interface with conformers, in line with polarized sum frequency generation spectroscopy results.
基于周期性密度泛函理论的分子动力学模拟证实,在环境条件下,纯液态乙二醇中中心OCCO二面角处于该构象的分子比例为21%,其余为构象异构体。以此结果为基准,本文开发了两种非极化力场,以重现液体中的构象异构体分布情况,这是几个通用力场中未充分解决的一个重要方面。据估计,液体中分子的平均偶极矩比其在气相中的值增强了约40%,这一特征通过从头算分子动力学模拟得以识别,并被我们的力场相当准确地重现。它们还被证明能够定量预测液体的所有物理性质。乙二醇液-气界面处的分子以其亚甲基指向气相的方式排列,这一要求使得界面富含该构象异构体,与偏振和频产生光谱结果一致。