Department of Chemistry, Molecular Sciences Research Hub Imperial College, W12 0BZ, London, UK.
Phys Chem Chem Phys. 2020 Jan 21;22(3):1682-1692. doi: 10.1039/c9cp05932f. Epub 2020 Jan 2.
Ionic liquids feature thermophysical properties that are of interest in solvents, energy storage materials and tunable lubrication applications. Here we use new Coarse Grained (CG) models to investigate the structure, dynamics and interfacial properties of the [CMIM][BF] family of ionic liquids (ILs). The simulated equation of state and diffusion coefficients are in good agreement with experimental data and with all-atom force-fields. We quantify the nano-structure and liquid-vapour interfacial properties of the ILs as a function of the size of the imidazolium cation. The computational efficiency of the CG models enables the simulation of very long time scales (100's of nanoseconds), which are needed to resolve the dynamic and interfacial properties of ILs containing cations with long aliphatic chains. For [CMIM] [BF] the break in symmetry associated to the liquid-vapour interface induces nanostructuring of polar and non-polar domains in the direction perpendicular to the interface plane, with the inhomogeneous regions penetrating deep inside the bulk liquid, typically 5 nm for CMIM cations.
离子液体具有在溶剂、储能材料和可调润滑应用中感兴趣的热物理性质。在这里,我们使用新的粗粒(CG)模型来研究[CMIM][BF]系列离子液体(ILs)的结构、动力学和界面性质。模拟的状态方程和扩散系数与实验数据和全原子力场吻合得很好。我们定量地研究了 ILs 的纳米结构和液-气相界面性质,作为离子大小的函数。CG 模型的计算效率使我们能够模拟非常长的时间尺度(数百纳秒),这对于解决含有长脂肪链阳离子的 ILs 的动力学和界面性质是必要的。对于[CMIM][BF],与液-气相界面相关的对称破缺会导致在垂直于界面平面的方向上产生极性和非极性区域的纳米结构,不均匀区域深入渗透到体相液体内部,通常对于 CMIM 阳离子为 5nm。