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Force fields for studying the structure and dynamics of ionic liquids: A critical review of recent developments

机译:用于研究离子液体的结构和动力学的力场:最新进展的批判性评论

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Classical molecular dynamics simulations are a valuable tool to study the mechanisms that dominate the properties of ionic liquids (ILs) on the atomistic and molecular level. However, the basis for any molecular dynamics simulation is an accurate force field describing the effective interactions between all atoms in the IL. Normally this is done by empirical potentials which can be partially derived from quantum mechanical calculations on simple subunits or have been fitted to experimental data. Unfortunately, the number of accurate classical non-polarizable models for ILs that allow a reasonable description of both dynamical and statical properties is still low. However, the strongly increasing computational power allows one to apply computationally more expensive methods, and even polarizable-force-field-based models on time and length scales long enough to ensure a proper sampling of the phase space. This review attempts to summarize recent achievements and methods in the development of classical force fields for ionic liquids. As this class of salts covers a large number of compounds, we focus our review on imidazolium-based ionic liquids, but show that the main conclusions are valid for non-imidazolium salts, too. Insight obtained from recent electronic density functional results into the parametrization of partial charges and on the influence of polarization effects in bulk ILs is highlighted. An overview is given of different available force fields, ranging from the atomistic to the coarse-grained level, covering implicit as well as explicit modeling of polarization. We show that the recently popular usage of the ion charge as fit parameter can looked upon as treating polarization effects in a mean-field matter.
机译:经典的分子动力学模拟是研究在原子级和分子级主导离子液体(ILs)特性的机理的有价值的工具。但是,任何分子动力学模拟的基础都是一个精确的力场,该力场描述了IL中所有原子之间的有效相互作用。通常,这是通过经验电势完成的,该经验电势可以部分地从对简单亚基的量子力学计算中得出,或者已经拟合到实验数据中。不幸的是,允许对动力学和静态特性进行合理描述的IL的精确经典非极化模型的数量仍然很少。但是,强大的计算能力使人们可以应用更昂贵的计算方法,甚至可以在时间和长度尺度上应用基于极化力场的模型,其模型的时间要足够长,以确保对相空间进行适当的采样。本文综述了离子液体经典力场发展中的最新成就和方法。由于这类盐涵盖了大量化合物,因此我们将重点放在基于咪唑鎓的离子液体上,但表明主要结论也适用于非咪唑鎓盐。从最近的电子密度函数结果中获得的见解已被强调到部分电荷的参数化以及对大体积IL中极化效应的影响。概述了不同的可用力场,从原子级到粗粒度级,涵盖了极化的隐式和显式建模。我们表明,最近流行的离子电荷作为拟合参数的用法可以看作是在均场物质中处理极化效应的方法。

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