Chemical, Biological and Macromolecular Sciences, S. N. Bose National Centre for Basic Sciences, Block-JD, Sector-III, Salt Lake, Kolkata 700106, India.
Thematic Unit for Excellence-Computational Materials Science, S. N. Bose National Centre for Basic Sciences, Block-JD, Sector-III, Salt Lake, Kolkata 700106, India.
J Chem Phys. 2018 May 21;148(19):193839. doi: 10.1063/1.5017797.
Reorientational dynamics of the constituent ions in a room temperature ionic liquid, 1-butyl-3-methylimidazolium hexafluorophosphate ([BMIM][PF]), are explored via molecular dynamics simulations, and several features of orientation dynamics are summarized. The anion, [PF], not only exhibits a higher propensity to orientation jumps than the cation, [BMIM] but also accesses a wider jump angle distribution and larger peak-angle. Jump and waiting time distributions for both the ions depict power-law dependences, suggesting temporally heterogeneous dynamics for the medium. This heterogeneity feature is further highlighted by the finding that the simulated first rank ( = 1) and second rank ( = 2) average reorientational correlation times reflect a severe break-down of Debye's ( + 1) law for orientational diffusion in an isotropic homogeneous medium. Simulated average H-bond lifetime resides between the mean orientation jump and waiting times, while the structural H-bond relaxation suggests, as in normal liquids, a pronounced presence of translational motion of the partnering ions. Average simulated jump trajectories reveal a strong rotation-translation coupling and indicate relatively larger changes in spatial and angular arrangements for the anion during an orientation jump. In fact, a closer inspection of all these results points toward more heterogeneous dynamics for [PF] than [BMIM]. This is a new observation and may simply be linked to the ion-size. However, such a generalization warrants further study.
室温离子液体 1-丁基-3-甲基咪唑六氟磷酸盐([BMIM][PF_6])中构成离子的重取向动力学通过分子动力学模拟进行了探索,并总结了几个取向动力学的特征。阴离子[PF_6]不仅比阳离子[BMIM]更倾向于取向跳跃,而且还能达到更宽的跳跃角分布和更大的峰值角。两种离子的跳跃和等待时间分布都呈现幂律依赖性,表明介质具有时空不均匀的动力学特性。这一不均匀性特征进一步被发现,即模拟的第一级(=1)和第二级(=2)平均重取向相关时间严重违反了各向同性均匀介质中德拜(+1)定律的取向扩散。模拟的平均氢键寿命介于平均取向跳跃和等待时间之间,而结构氢键弛豫表明,与正常液体一样,配对离子的平移运动明显存在。平均模拟跳跃轨迹揭示了强烈的旋转-平移耦合,并表明在取向跳跃过程中阴离子的空间和角度排列发生了相对较大的变化。事实上,对所有这些结果的仔细检查表明,[PF_6]的动力学比[BMIM]更为不均匀。这是一个新的观察结果,可能仅仅与离子大小有关。然而,这种概括需要进一步的研究。