Shi Minjie, Kou Shengzhong, Yan Xingbin
Laboratory of Clean Energy Chemistry and Materials, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, 730000 Lanzhou (PR China); State Key Laboratory of Gansu Advanced Non-ferrous Metal Materials, Department of Material Science and Engineering, Lanzhou University of Technology, 730000 Lanzhou (PR China).
ChemSusChem. 2014 Nov;7(11):3053-62. doi: 10.1002/cssc.201402275. Epub 2014 Aug 21.
Graphene sheet (GS)-ionic liquid (IL) supercapacitors are receiving intense interest because their specific energy density far exceeds that of GS-aqueous electrolytes supercapacitors. The electrochemical properties of ILs mainly depend on their diverse ions, especially anions. Therefore, identifying suitable IL electrolytes for GSs is currently one of the most important tasks. The electrochemical behavior of GSs in a series of ILs composed of 1-ethyl-3-methylimidazolium cation (EMIM(+)) with different anions is systematically studied. Combined with the formula derivation and building models, it is shown that the viscosity, ion size, and molecular weight of ILs affect the electrical conductivity of ILs, and thus, determine the electrochemical performances of GSs. Because the EMIM-dicyanamide IL has the lowest viscosity, ion size, and molecular weight, GSs in it exhibit the highest specific capacitance, smallest resistance, and best rate capability. In addition, because the tetrafluoroborate anion (BF4(-)) has the best electrochemical stability, the GS-[EMIM][BF4] supercapacitor has the widest potential window, and thus, displays the largest energy density. These results may provide valuable information for selecting appropriate ILs and designing high-performance GS-IL supercapacitors to meet different needs.
石墨烯片(GS)-离子液体(IL)超级电容器正受到广泛关注,因为其比能量密度远远超过GS-水系电解质超级电容器。离子液体的电化学性质主要取决于其多样的离子,尤其是阴离子。因此,为石墨烯片确定合适的离子液体电解质是当前最重要的任务之一。系统研究了石墨烯片在一系列由1-乙基-3-甲基咪唑阳离子(EMIM(+))与不同阴离子组成的离子液体中的电化学行为。结合公式推导和构建模型表明,离子液体的粘度、离子大小和分子量会影响离子液体的电导率,进而决定石墨烯片的电化学性能。由于EMIM-双氰胺离子液体具有最低的粘度、离子大小和分子量,其中的石墨烯片表现出最高的比电容、最小的电阻和最佳的倍率性能。此外,由于四氟硼酸根阴离子(BF4(-))具有最佳的电化学稳定性,GS-[EMIM][BF4]超级电容器具有最宽的电位窗口,因此展现出最大的能量密度。这些结果可为选择合适的离子液体以及设计满足不同需求的高性能GS-IL超级电容器提供有价值的信息。