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乙醇的可极化灵活模型。

Polarizable and flexible model for ethanol.

作者信息

Wang Shihao, Cann N M

机构信息

Department of Chemistry, Queen's University, Kingston, Ontario K7L 3N6, Canada.

出版信息

J Chem Phys. 2007 Jun 7;126(21):214502. doi: 10.1063/1.2730837.

DOI:10.1063/1.2730837
PMID:17567203
Abstract

A polarizable, flexible model for ethanol is obtained based on an extensive series of B3LYP/6-311++G(d,p) calculations and molecular dynamics simulations. The ethanol model includes electric-field dependence in both the atomic charges and the intramolecular degrees of freedom. Field-dependent intramolecular potentials have been attempted only once previously, for OH and HH stretches in water [P. Cicu et al., J. Chem. Phys. 112, 8267 (2000)]. The torsional potential involving the hydrogen-bonding hydrogen in ethanol is found to be particularly field sensitive. The methodology for developing field-dependent potentials can be readily generalized to other molecules and is discussed in detail. Molecular dynamics simulations of bulk ethanol are performed and the results are assessed based on comparisons with the self-diffusion coefficient [N. Karger et al., J. Chem. Phys. 93, 3437 (1990)], dielectric constant [J. T. Kindt and C. A. Schmuttenmaer, J. Phys. Chem. 100, 10373 (1996)], enthalpy of vaporization [R. C. Wilhoit and B. J. Zwolinski, J. Phys. Chem. Ref. Data, Suppl. 2, 2 (1973)], and experimental interatomic distributions [C. J. Benmore and Y. L. Loh, J. Chem. Phys. 112, 5877 (2000)]. The simultaneous variation of the atomic charges and the intramolecular potentials requires modified equations of motion and a multiple time step algorithm has been implemented to solve these equations. The article concludes with a discussion of the bulk structure and properties with an emphasis on the hydrogen bonding network.

摘要

基于一系列广泛的B3LYP/6 - 311++G(d,p)计算和分子动力学模拟,得到了一种可极化的乙醇柔性模型。该乙醇模型在原子电荷和分子内自由度方面都包含电场依赖性。此前仅针对水中的OH和HH伸缩振动尝试过一次场依赖的分子内势[P. Cicu等人,《化学物理杂志》112, 8267 (2000)]。发现涉及乙醇中氢键氢的扭转势对场特别敏感。开发场依赖势的方法可以很容易地推广到其他分子,并将进行详细讨论。对大量乙醇进行了分子动力学模拟,并基于与自扩散系数[N. Karger等人,《化学物理杂志》93, 3437 (1990)]、介电常数[J. T. Kindt和C. A. Schmuttenmaer,《物理化学杂志》100, 10373 (1996)]、汽化焓[R. C. Wilhoit和B. J. Zwolinski,《化学物理参考数据》,增刊2, 2 (1973)]以及实验原子间分布[C. J. Benmore和Y. L. Loh,《化学物理杂志》112, 5877 (2000)]的比较来评估结果。原子电荷和分子内势的同时变化需要修改运动方程,并且已经实施了多时间步算法来求解这些方程。文章最后讨论了整体结构和性质,重点是氢键网络。

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