Moosavi Majid, Khashei Fatemeh, Sedghamiz Elaheh
Department of Chemistry, University of Isfahan, Isfahan 81746-73441, Iran.
Phys Chem Chem Phys. 2017 Dec 20;20(1):435-448. doi: 10.1039/c7cp05681h.
In this work, the structural and dynamical properties of two imidazolium-based geminal dicationic ionic liquids (GDILs), i.e. [C(mim)][NTf] with n = 3 and 5, have been studied to obtain a fundamental understanding of the molecular basis of the macroscopic and microscopic properties of the bulk liquid phase. To achieve this purpose, molecular dynamics (MD) simulation, density functional theory (DFT) and atoms in molecule (AIM) methods were used. Interaction energies, charge transfers and hydrogen bonds between the cation and anions of each studied GDIL were investigated by DFT calculations and also AIM. The mean square displacement (MSD), self-diffusion coefficient, and transference number of the cation and anions, and also the density, viscosity and electrical conductivity of the studied GDILs, were computed at 333.15 K and at 1 atm. The simulated values were in good agreement with the experimental data. The effect of linkage alkyl chain length on the thermodynamic, transport and structural properties of these GDILs has been investigated. The structural features of these GDILs were characterized by calculating the partial site-site radial distribution functions (RDFs) and spatial distribution functions (SDFs). The heterogeneity order parameter (HOP) has been used to describe the spatial structures of these GDILs and the distribution of the angles formed between two cation heads and the middle carbon atom of the linkage alkyl chain was analyzed in these ILs. To investigate the temporal heterogeneity of the studied GDILs, the deviation of the self-part of the van Hove correlation function, G(r[combining right harpoon above],t), from the Gaussian distribution of particle displacement and also the second-order non-Gaussian parameter, α(t), were used. Since, the transport and interfacial properties and ionic characteristics of these GDILs were studied experimentally in our previous studies as a function of linkage chain length and temperature, in this work, we try to give a better perspective of the structure and dynamics of these systems at a molecular level.
在这项工作中,研究了两种基于咪唑鎓的偕二阳离子离子液体(GDILs),即n = 3和5的[C(mim)][NTf]的结构和动力学性质,以从分子层面深入理解本体液相宏观和微观性质的分子基础。为实现这一目的,使用了分子动力学(MD)模拟、密度泛函理论(DFT)和分子中的原子(AIM)方法。通过DFT计算以及AIM研究了每种所研究的GDIL的阳离子和阴离子之间的相互作用能、电荷转移和氢键。在333.15 K和1 atm下计算了所研究的GDIL的阳离子和阴离子的均方位移(MSD)、自扩散系数和迁移数,以及密度、粘度和电导率。模拟值与实验数据吻合良好。研究了连接烷基链长度对这些GDIL的热力学、传输和结构性质的影响。通过计算部分位点-位点径向分布函数(RDFs)和空间分布函数(SDFs)对这些GDIL的结构特征进行了表征。使用非均质性序参数(HOP)来描述这些GDIL的空间结构,并分析了这些离子液体中两个阳离子头与连接烷基链中间碳原子之间形成的角度分布。为了研究所研究的GDIL的时间非均质性,使用了范霍夫关联函数G(r[右上箭头],t)的自部分与粒子位移高斯分布的偏差以及二阶非高斯参数α(t)。由于在我们之前的研究中已通过实验研究了这些GDIL的传输、界面性质和离子特性与连接链长度和温度的关系,在这项工作中,我们试图从分子层面更好地展现这些体系的结构和动力学。