Department of Physics, Clarkson University, Potsdam, New York 13699, USA.
ACS Appl Mater Interfaces. 2013 Mar;5(6):2075-84. doi: 10.1021/am302921r. Epub 2013 Mar 11.
Nonvolatile and nonflammable ionic liquids (ILs) have distinct thermal advantages over the traditional organic solvent electrolytes of lithium ion batteries. However, this beneficial feature of ILs is often counterbalanced by their high viscosity (a limiting factor for ionic conductivity) and, sometimes, by their unsuitable electrochemistry for generating protective layers on electrode surfaces. In an effort to alleviate these limiting aspects of ILs, we have synthesized a PEGylated imidazolium bis(trifluoromethylsulfonyl)amide (bistriflamide) IL that exhibited better thermal and electrochemical stability than a conventional electrolyte based on a blend of ethylene carbonate and diethyl carbonate. The electrochemical performance of this IL has been demonstrated using a cathode consisting of ball-milled LiMn2O4 particles. A direct comparison of the ionic liquid electrolyte with the nonionic low-viscosity conventional solvent blend is presented.
非挥发性和不可燃离子液体 (ILs) 在热稳定性方面与锂离子电池的传统有机溶剂电解质相比具有明显优势。然而,ILs 的这一有益特性通常会被其高粘度(限制离子电导率的因素)所抵消,有时还会因其不适合在电极表面生成保护层的电化学性质而受到限制。为了缓解 ILs 的这些限制因素,我们合成了一种聚乙二醇化的咪唑𬭩双(三氟甲烷磺酰)酰胺(双三氟甲磺酰亚胺)IL,与基于碳酸乙烯酯和碳酸二乙酯混合物的传统电解质相比,该 IL 表现出更好的热稳定性和电化学稳定性。使用球磨 LiMn2O4 颗粒制成的阴极来证明该 IL 的电化学性能。本文还对离子液体电解质与低粘度非离子传统溶剂混合物进行了直接比较。