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Molecular dynamics simulations of the structure and single-particle dynamics of mixtures of divalent salts and ionic liquids

机译:二价盐和离子液体混合物的结构和单颗粒动力学的分子动力学模拟

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We report a molecular dynamics study of the structure and single-particle dynamics of mixtures of a protic (ethylammonium nitrate) and an aprotic (1-butyl-3-methylimidazolium hexaflurophosphate [BMIM][PF6]) room-temperature ionic liquids doped with magnesium and calcium salts with a common anion at 298.15 K and 1 atm. The solvation of these divalent cations in dense ionic environments is analyzed by means of apparent molar volumes of the mixtures, radial distribution functions, and coordination numbers. For the protic mixtures, the effect of salt concentration on the network of hydrogen bonds is also considered. Moreover, single-particle dynamics of the salt cations is studied by means of their velocity autocorrelation functions and vibrational densities of states, explicitly analyzing the influence of salt concentration, and cation charge and mass on these magnitudes. The effect of the valency of the salt cation on these properties is considered comparing the results with those for the corresponding mixtures with lithium salts. We found that the main structural and dynamic features of the local solvation of divalent cations in ionic liquids are similar to those of monovalent salts, with cations being localized in the polar nanoregions of the bulk mixture coordinated in monodentate and bidentate coordination modes by the [NO3](-) and [PF6](-) anions. However, stronger electrostatic correlations of these polar nanoregions than in mixtures with salts with monovalent cations are found. The vibrational modes of the ionic liquid (IL) are seen to be scarcely affected by the addition of the salt, and the effect of mass and charge on the vibrational densities of states of the dissolved cations is reported. Cation mass is seen to exert a deeper influence than charge on the low-frequency vibrational spectra, giving a red shift of the vibrational modes and a virtual suppression of the higher energy vibrational modes for the heavier Ca2+ cations. No qualitative difference with monovalent cations was found in what solvation is concerned, which suggests that no enhanced reduction of the mobility of these cations and their complexes in ILs respective to those of monovalent cations is to be expected. (C) 2015 AIP Publishing LLC.
机译:我们报告了质子(硝酸乙基铵)和质子(1-丁基-3-甲基咪唑六氟磷酸盐[BMIM] [PF6])室温离子液体掺杂镁的混合物的结构和单颗粒动力学的分子动力学研究和钙盐,在298.15 K和1个大气压下有一个共同的阴离子。通过混合物的表观摩尔体积,径向分布函数和配位数来分析在稠密离子环境中这些二价阳离子的溶剂化。对于质子混合物,还应考虑盐浓度对氢键网络的影响。此外,利用盐阳离子的速度自相关函数和状态振动密度研究了盐阳离子的单粒子动力学,明确分析了盐浓度,阳离子电荷和质量对这些大小的影响。考虑将盐阳离子的化合价对这些性质的影响与相应的锂盐混合物的结果进行比较。我们发现离子液体中二价阳离子的局部溶剂化的主要结构和动力学特征与一价盐相似,阳离子位于本体混合物的极性纳米区域,并由[NO3]以单齿和双齿配位方式进行配位。 ](-)和[PF6](-)阴离子。然而,发现这些极性纳米区域的静电相关性比与具有单价阳离子的盐的混合物强。盐的加入几乎不会影响离子液体(IL)的振动模式,而且据报道,质量和电荷对溶解的阳离子状态的振动密度也有影响。可以看出,阳离子质量对低频振动谱的影响比电荷更深,对于较重的Ca2 +阳离子,振动模态会发生红移,并且对较高能量的振动模态会产生虚拟抑制作用。在所关注的溶剂化方面,未发现与单价阳离子在质量上的差异,这表明,预期这些阳离子及其复合物在ILs中的迁移率不会随着单价阳离子的增加而降低。 (C)2015 AIP Publishing LLC。

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