首页> 外文期刊>Journal of chemical theory and computation: JCTC >Molecular Dynamics Simulations of the Ionic Liquid 1-n-Butyl-3-Methylimidazolium Chloride and Its Binary Mixtures with Ethanol
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Molecular Dynamics Simulations of the Ionic Liquid 1-n-Butyl-3-Methylimidazolium Chloride and Its Binary Mixtures with Ethanol

机译:离子液体1-n-丁基-3-甲基咪唑鎓氯化物及其与乙醇的二元混合物的分子动力学模拟

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Room temperature ionic liquids (ILs) of the imidazolium family have attracted much attention during the past decade for their capability to dissolve biomass. Besides experimental work, numerous compuational studies have been concerned with the physical properties of both neat ILs and their interactions with different solutes, in particular, carbohydrates. Many classical force fields designed specifically for ILs have been found to yield viscosities that are too high for the liquid state, which has been attributed to the fact that the effective charge densities are too high due to the lack of electronic polarizability. One solution to this problem has been uniform scaling of the partial charges by a scale factor in the range 0.6-0.9, depending on model. This procedure has been shown to improve the viscosity of the models, and also to positively affect other properties, such as diffusion constants and ionic conductivity. However, less attention has been paid to how this affects the overall thermodynamics of the system, and the problems it might create when the IL models are combined with other force fields (e.g., for solutes). In the present work, we employ three widely used IL force fields to simulate l-n-butyl-3-methyl- imidazolium chloride in both the crystal and the liquid state, as well as its binary mixture with ethanol. Two approaches are used: one in which the ionic charge is retained at its full integer value and one in which the partial charges are uniformly reduced to 85%. We investigate and calculate crystal and liquid structures, molar heat capacities, heats of fusion, self-diffusion constants, ionic conductivity, and viscosity for the neat IL, and ethanol activity as a function of ethanol concentration for the binary mixture. We show that properties of the crystal are less affected by charge scaling compared to the liquid. In the liquid state, transport properties of the neat IL are generally improved by scaling, whereas values for the heat of fusion are unaffected, and results for the heat capacity are ambiguous. Neither full nor reduced charges could reproduce experimental ethanol activities for the whole range of compositions.
机译:咪唑族的室温离子液体(IL)在过去十年中因其溶解生物质的能力而备受关注。除实验工作外,许多计算研究还涉及纯净IL的物理性质及其与不同溶质(尤其是碳水化合物)的相互作用。已经发现许多专门为IL设计的经典力场产生的粘度对于液态来说太高,这归因于以下事实:由于缺乏电子极化性,有效电荷密度太高。解决该问题的一种方法是根据模型在0.6-0.9范围内以比例因子均匀缩放部分电荷。已证明该程序可以改善模型的粘度,并且还可以积极影响其他属性,例如扩散常数和离子电导率。然而,人们很少关注这如何影响系统的整体热力学,以及当IL模型与其他力场(例如溶质)组合时可能产生的问题。在目前的工作中,我们采用了三种广泛使用的IL力场来模拟结晶和液态的1-n-丁基-3-甲基-咪唑氯化物及其与乙醇的二元混合物。使用了两种方法:一种方法将离子电荷保持在其完整整数值,另一种方法将部分电荷均匀地减少到85%。我们研究和计算纯净IL的晶体和液体结构,摩尔热容,熔融热,自扩散常数,离子电导率和粘度,以及二元混合物的乙醇活度与乙醇浓度的关系。我们表明,与液体相比,晶体的性质受电荷缩放的影响较小。在液态下,通常通过缩放改善纯净IL的传输性能,而熔融热的值不受影响,并且热容的结果不明确。充满或减少的电荷都不能重现整个组合物的实验乙醇活性。

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