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Thermophysical Properties of Imidazolium-Based Binary Ionic Liquid Mixtures Using Molecular Dynamics Simulations

机译:基于咪唑鎓基二元离子液体混合物的热物理性质使用分子动力学模拟

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Until very recently, task-specific ionic liquids have been designed by altering the chemistry of either the cation, anion, or both. An alternative approach, that is gaining considerable momentum, is to consider ionic liquids that are derived from mixing two different ionic liquids and varying the molar composition of such blends to exert precise control over the desired physicochemical and biological properties. As the number of ionic liquids that result from mixing is projected to be close to a billion, it is highly desirable to predict a priori whether ionic liquid mixtures can be considered as ideal solutions of their pure analogues. Toward this end, we employ molecular dynamics simulations to predict the density, molar volumes, excess molar volumes, self-diffusion coefficients, and ionic conductivities for 11 ionic liquid mixture systems as a function of mole fractions spanning the entire range of compositions of the constituent ionic liquids. The ionic liquid mixtures investigated here are 1-n-butyl-3-methylimidazolium [C(4)mim](+) chloride Cl- paired with [C(4)mim](+) acetate [CH3COO](-)/[OAC](-), [C(4)mim](+) trifluoroacetate [CF3COO](-)/[TFA](-) and [C(4)mim](+) trifluoromethanesulfonate [CF3SO3](-)/[TFS](-), and [C(4)mim][OAC] combined with [C(4)mim][TFA] and [C(4)mim][TFS]. The effect of change in the alkyl chain length on the thermophysical properties of ionic liquid mixtures containing anions as Cl--methylsulfate [MeSO4](-), and Cl--bis(trifluoromethanesulfonyl)imide [NTf2](-) is evaluated by coupling with 1-ethyl-3-methylimidazolium [C(2)mim](+), 1-n-hexyl-3-methylimidazolium [C(6)mim](+), and 1-n-octyl-3-methylimidazolium [C(8)mim](+) cations. The deviation of the property trend from the linear mixing rule is discussed in terms of the difference in the properties of pure ionic liquid analogues.
机译:直到最近,通过改变阳离子,阴离子或两者的化学来设计任务特异性离子液体。一种替代的方法,即获得相当大的动量,是考虑衍生自混合两种不同的离子液体并改变这种共混物的摩尔组合物来施加精确控制,以对所需的物理化学和生物学性能产生精确控制的离子液体。随着混合产生的离子液体的数量被投射到接近十亿,非常希望预测离子液体混合物可被认为是纯类似物的理想溶液的先验。朝向该目的,我们采用分子动力学模拟,以预测11离子液体混合物系统的密度,摩尔体积,多余的摩尔体积,自扩散系数和离子电导率,作为跨越组成的整个组合物的摩尔级分的摩尔级分离子液体。所述离子液体的混合物这里考察是1-正丁基-3-甲基咪唑鎓[C(4)MIM](+)氯化氯离子配对[C(4)MIM](+)乙酸酯[CH 3 COO]( - )/ [ OAC]( - ),[C(4)MIM](+)三氟乙酸酯[CF3COO]( - )/ [TFA]( - )和[C(4)MIM](+)三氟甲磺酸盐[CF3SO3]( - )/ [ TFS]( - )和[C(4)MIM] [OAC]与[C(4)MIM] [TFA]和[C(4)MIM] [TFS]相结合。通过耦合评估烷基链长度对含Cl - 甲基硫酸氢盐[Meso4]( - )和Cl - Bis(三氟甲磺酰基)酰亚胺[NTF2]( - )的离子液体混合物热物理性质对含离子液体混合物热神经性质的影响用1-乙基-3-甲基咪唑鎓[C(2)MIM](+),1-正己基-3-甲基咪唑鎓[C(6)MIM](+)和1-正辛基-3-甲基咪唑鎓[ C(8)MIM](+)阳离子。根据纯离子液体类似物的性质的差异讨论了从线性混合规则的性质趋势的偏差。

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