Heydari Dokoohaki Maryam, Zolghadr Amin Reza, Ghatee Mohammad Hadi, Klein Axel
Department of Chemistry, Shiraz University, Shiraz, 71946-84795, Iran.
Phys Chem Chem Phys. 2020 Dec 16;22(47):27882-27895. doi: 10.1039/d0cp04303f.
The behavior of aqueous solutions of mixtures of ionic liquids (ILs) is of special interest because of their amphiphilic character, from both a fundamental and application viewpoint. In this work, we conducted molecular dynamics (MD) simulations and density functional theory (DFT) calculations to understand the effect of water on the intermolecular interactions in three IL binary mixtures [C4mim]/[Cl]/[BF4], [C4mim]/[Cl]/[PF6] and [C4mim]/[BF4]/[PF6] containing the well-characterized cation, 1-n-butyl-3-methylimidazolium [C4mim]+ and the anions chloride [Cl]-, tetrafluoroborate [BF4]-, and hexafluorophosphate [PF6]-. The perturbation of the structures in the binary IL mixture by water molecules was analyzed in the bulk and at the liquid/vacuum interface using distribution functions, hydrogen-bond statistics, and density profiles. Interactions between anions and cations change drastically when the IL mixtures are dissolved in water. In particular, anion-water interactions are stronger than anion-cation interactions. H-Bonds are the dominant interactions. They are prevalently electrostatic and strong for the two [Cl]-containing systems in both the water-free and the water-containing systems. The very hydrophobic [C4mim]/[BF4]/[PF6] system gains stability from dispersive interactions and consequently segregates water markedly when admixed. The most probable orientations of IL cations in the bulk and at the vicinity of the interface were examined using bivariate distribution calculations and show [PF6]- segregating to the surface in keeping with its highly hydrophobic nature. DFT calculated structures, energies, dipole moments, global hardness and solvation energies using model ion pairs [C4mim][X] or complexes [C4mim]2[X][Y], with [X/Y]- = [Cl]-, [BF4]-, or [PF6]- are completely consistent with the findings for the bulk.
从基础和应用的角度来看,离子液体(ILs)混合物水溶液的行为因其两亲性而备受关注。在这项工作中,我们进行了分子动力学(MD)模拟和密度泛函理论(DFT)计算,以了解水对三种含特征明确的阳离子1 - 正丁基 - 3 - 甲基咪唑鎓[C4mim]+以及阴离子氯离子[Cl]-、四氟硼酸根[BF4]-和六氟磷酸根[PF6]-的离子液体二元混合物[C4mim]/[Cl]/[BF4]、[C4mim]/[Cl]/[PF6]和[C4mim]/[BF4]/[PF6]中分子间相互作用的影响。利用分布函数、氢键统计和密度分布,在本体相中以及液/真空界面处分析了水分子对二元离子液体混合物结构的扰动。当离子液体混合物溶解于水中时,阴离子和阳离子之间的相互作用会发生显著变化。特别是,阴离子 - 水相互作用强于阴离子 - 阳离子相互作用。氢键是主要的相互作用。在无水和含水体系中,对于两个含[Cl]-的体系,氢键主要是静电作用且很强。疏水性很强的[C4mim]/[BF4]/[PF6]体系通过色散相互作用获得稳定性,因此混合时会明显地使水分离。使用双变量分布计算研究了本体相和界面附近离子液体阳离子最可能的取向,结果表明[PF6]-因其高度疏水性而聚集在表面。使用模型离子对[C4mim][X]或配合物[C4mim]2[X][Y](其中[X/Y]- = [Cl] -、[BF4] -或[PF6] -)进行的DFT计算的结构、能量、偶极矩、整体硬度和溶剂化能与本体相的研究结果完全一致。