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量子化学衍生电荷的表现和离子笼在离子液体中的持久性。1-丁基-3-甲基咪唑溴化物的分子动力学模拟研究。

Performance of quantum chemically derived charges and persistence of ion cages in ionic liquids. A molecular dynamics simulations study of 1-n-butyl-3-methylimidazolium bromide.

机构信息

Wilhelm-Ostwald-Institut für Physikalische und Theoretische Chemie, Universität Leipzig, Linnéstrasse 2, D-04103 Leipzig, Germany.

出版信息

J Phys Chem B. 2011 Feb 3;115(4):693-702. doi: 10.1021/jp109612k. Epub 2010 Dec 20.

Abstract

We carried out classical molecular dynamics simulations with a standard and two quantum chemistry based charge sets to study the ionic liquid 1-n-butyl-3-methylimidazolium bromide, [C(4)C(1)im][Br]. We split the cation up into different charge groups and found that the total charge and the charge distribution in the imidazolium ring are completely different in the three systems while the total charge of the butyl chain is much better conserved between the methods. For comparison, the spatial distribution functions and the radial distribution functions as well as different time correlation functions were calculated. For the structural properties we obtained a good agreement between the standard and one of the two quantum chemistry based sets, while the results from the second quantum chemistry based set led to a completely different picture. The opposite was observed for the dynamic properties, which agree well between the standard set and the second quantum chemistry based set, whereas the dynamics in the first charge set obtained by quantum chemistry calculations proceeded much too slow, which is not obvious from the total charge. We observed, that the structure of the butyl chain is mostly unaffected by the choice of the charge set. This is an indirect proof for separation into ionic parts and nonpolar domains. A second focus of the article is the investigation of dynamical heterogeneity and the ion cages. Therefore, we analyzed the reorientational dynamics in the three systems and at five different temperatures in system with the standard charge set. Generally speaking, we detected four different time domains. The fastest movement can be found for the continuous hydrogen bond and the nearest neighbor ion pair dynamics. In the second time domain the movement of the butyl chain took place. The third time domain consisted in the increasing movement of the imidazolium ring as well as in the continuous distortion of an ion cage, i.e., the departure of one of the several counterions from the central ion's first shell, and the intermittent hydrogen bond dynamics. The remaining domain involves the translational displacement of the ions.

摘要

我们使用标准电荷集和两个量子化学电荷集进行了经典分子动力学模拟,以研究离子液体 1-丁基-3-甲基咪唑溴化物 [C(4)C(1)im][Br]。我们将阳离子分成不同的电荷组,发现三种体系中的总电荷和咪唑环的电荷分布完全不同,而链的总电荷在方法之间得到了更好的保留。为了进行比较,我们计算了空间分布函数、径向分布函数和不同的时间相关函数。对于结构性质,我们在标准电荷集和两个量子化学电荷集之一之间获得了很好的一致性,而第二个量子化学电荷集的结果则导致了完全不同的图像。对于动力学性质则相反,标准电荷集和第二个量子化学电荷集之间的结果非常一致,而通过量子化学计算得到的第一个电荷集的动力学则进行得太慢,这从总电荷中并不明显。我们观察到,链的结构主要不受电荷集的选择影响。这是分离为离子部分和非极性域的间接证明。本文的第二个重点是研究动力学不均匀性和离子笼。因此,我们在标准电荷集的三个系统和五个不同温度下分析了三个系统中的重新取向动力学。一般来说,我们检测到四个不同的时间域。最快的运动可以在连续氢键和最近邻离子对动力学中找到。在第二个时间域中,发生了链的运动。第三个时间域由咪唑环的不断运动以及离子笼的连续变形组成,即几个抗衡离子之一从中心离子的第一层壳中离开,以及间歇性氢键动力学。剩下的区域涉及离子的平移位移。

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