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一种基于胍盐离子液体的力场,该力场利用实际液体的电子电荷分布:分子模拟研究。

A force field for guanidinium-based ionic liquids that utilizes the electron charge distribution of the actual liquid: a molecular simulation study.

作者信息

Klähn Marco, Seduraman Abirami, Wu Ping

机构信息

Institute of High Performance Computing, 1 Fusionopolis Way, 16-16, Connexis, Singapore 138632.

出版信息

J Phys Chem B. 2008 Sep 4;112(35):10989-1004. doi: 10.1021/jp801280s. Epub 2008 Aug 7.

Abstract

We propose a new all-atom force field for guanidinium-based ionic liquids (GILs) which is based on the charge distribution in the actual liquid. It comprises all cations that can be built by attaching alkyl chains of variable length to an acyclic or cyclic guanidinium compound and that are paired with nitrate or perchlorate anions. We based the parametrization of the force field on liquid-phase charge distributions to improve the prediction of energetic and dynamic properties of GILs. The impact of electron charge transfer and polarization on various properties of GILs is systematically assessed. A significant average electron charge transfer between -0.12 and -0.06 e from anions to the central guanidinium group of the cations and a strong polarization of acyclic cations are observed by applying a combined quantum mechanical/molecular mechanical (QM/MM) approach. Molecular dynamics simulations of GILs are performed, utilizing the proposed force field. Derived structures approach the accuracy of QM/MM structures, and a previously reported crystal structure remains stable throughout the simulations. Mass densities are reproduced with a deviation of only 1.4% from experimental data. The calculated melting point of a GIL crystal deviates only 8% from the measured value. Self-diffusion coefficients of various GILs are reported, and a comparison with a diffusion coefficient derived from experimental data indicates that the values are within a reasonable range. We observe that the melting point of a GIL crystal was lowered up to 60 K and that diffusion coefficients are substantially increased by a factor of up to 3.5 upon consideration of charge transfer and polarization. The results demonstrate that liquid-phase partial charges are capable of improving the quality of ionic liquid force fields substantially and that their utilization led to a model that can be applied to predict structural, energetic, and dynamic properties of GILs.

摘要

我们基于实际液体中的电荷分布,提出了一种用于胍基离子液体(GILs)的全新全原子力场。它包含所有可通过将可变长度的烷基链连接到无环或环状胍化合物上构建的阳离子,且这些阳离子与硝酸根或高氯酸根阴离子配对。我们将力场的参数化基于液相电荷分布,以改进对GILs能量和动力学性质的预测。系统地评估了电子电荷转移和极化对GILs各种性质的影响。通过应用量子力学/分子力学(QM/MM)相结合的方法,观察到阴离子向阳离子中心胍基团有显著的平均电子电荷转移,转移量在-0.12至-0.06 e之间,并且无环阳离子有强烈的极化现象。利用所提出的力场对GILs进行了分子动力学模拟。推导的结构接近QM/MM结构的精度,并且先前报道的晶体结构在整个模拟过程中保持稳定。质量密度的再现值与实验数据的偏差仅为1.4%。计算得到的GIL晶体熔点与测量值的偏差仅为8%。报道了各种GILs的自扩散系数,与从实验数据导出的扩散系数进行比较表明,这些值在合理范围内。我们观察到,考虑电荷转移和极化后,GIL晶体的熔点降低了多达60 K,扩散系数大幅增加,高达3.5倍。结果表明,液相部分电荷能够显著提高离子液体力场的质量,并且对其的利用产生了一个可用于预测GILs结构、能量和动力学性质的模型。

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