Vicent-Luna José Manuel, Azaceta Eneko, Hamad Said, Ortiz-Roldán José Manuel, Tena-Zaera Ramón, Calero Sofía, Anta Juan Antonio
Department of Physical, Chemical, and Natural Systems, Universidad Pablo de Olavide, Ctra. Utrera km. 1. ES-, 41013, Seville, Spain.
Cidetec, Paseo Miramon 196, 20014, Donostia-San Sebastián, Spain.
Chemphyschem. 2018 Jul 5;19(13):1665-1673. doi: 10.1002/cphc.201701326. Epub 2018 Apr 18.
Among many other applications, room-temperature ionic liquids (ILs) are used as electrolytes for storage and energy-conversion devices. In this work, we investigate, at the microscopic level, the structural and dynamical properties of 1-methyl-1-butyl-pyrrolidinium bis(trifluoromethanesulfonyl) imide [C PYR] [Tf N] IL-based electrolytes for metal-ion batteries. We carried out molecular dynamics simulations of electrolytes mainly composed of [C PYR] [Tf N] IL with the addition of M -[Tf N] metal salts (M=Li , Na , Ni , Zn , Co , Cd , and Al , n=1, 2, and 3) dissolved in the IL. The addition of low salt concentrations lowers the charge transport and conductivity of the electrolytes. This effect is due to the strong interaction of the metal cations with the [Tf N] anions, which allows for molecular aggregation between them. We analyze how the conformation of the [Tf N] anions surrounding the metal cations determine the charge-transport properties of the electrolyte. We found two main conformations based on the size and charge of the metal cation: monodentate and bidentate (number of oxygen atoms of the anion pointing to the metal atoms). The microscopic local structure of the M -[Tf N] aggregates influences the microscopic charge transport as well as the macroscopic conductivity of the total electrolyte.
在许多其他应用中,室温离子液体(ILs)被用作存储和能量转换设备的电解质。在这项工作中,我们在微观层面研究了用于金属离子电池的基于1-甲基-1-丁基-吡咯烷鎓双(三氟甲磺酰)亚胺[C PYR][Tf N]离子液体的电解质的结构和动力学性质。我们对主要由[C PYR][Tf N]离子液体组成、添加了溶解在该离子液体中的M -[Tf N]金属盐(M = Li、Na、Ni、Zn、Co、Cd和Al,n = 1、2和3)的电解质进行了分子动力学模拟。添加低盐浓度会降低电解质的电荷传输和电导率。这种效应是由于金属阳离子与[Tf N]阴离子之间的强相互作用,这使得它们之间形成分子聚集。我们分析了围绕金属阳离子的[Tf N]阴离子的构象如何决定电解质的电荷传输性质。基于金属阳离子的大小和电荷,我们发现了两种主要构象:单齿和双齿(阴离子指向金属原子的氧原子数量)。M -[Tf N]聚集体的微观局部结构影响总电解质的微观电荷传输以及宏观电导率。