Varner Samuel, Wang Zhen-Gang
Division of Chemistry and Chemical Engineering, California Institute of Technology, Pasadena, California, 91125, USA.
Phys Chem Chem Phys. 2022 Nov 18;24(44):27362-27374. doi: 10.1039/d2cp03398d.
Room-temperature ionic liquids (RTILs) are synthetic electrolytes that have a large electrochemical stability window, making them attractive candidates for electric double-layer capacitor (EDLC) applications. Due to their high viscosities and low ionic conductivities, RTILs are often diluted with organic solvent for practical use. We study the effects of dilution on the performance of RTIL EDLCs using a simple mean-field model. We find that dilution diminishes the unfavorable hysteresis that results from a spontaneous surface charge separation (SSCS). As a result, the RTIL concentration can be used to modulate the proximity to the SSCS transition, and maximize capacitance. The interplay between the concentration and the correlation strength gives rise to complex zero-potential phase behavior, including a tricritical point and a -line, very similar to the Blume-Capel dilute Ising model. Additionally, electrodes that are solvophilic aid in the prevention of SSCS by drawing solvent molecules to the electrode and displacing ions. Solvophilic electrodes give rise to a phase transition at finite potential where the surface charge rapidly increases with a small increase in potential, leading to a substantial increase in capacitance and energy storage.
室温离子液体(RTILs)是一种合成电解质,具有较大的电化学稳定窗口,这使其成为用于双电层电容器(EDLC)应用的有吸引力的候选材料。由于其高粘度和低离子电导率,RTILs在实际应用中常被有机溶剂稀释。我们使用一个简单的平均场模型研究稀释对RTIL EDLC性能的影响。我们发现稀释减少了由自发表面电荷分离(SSCS)导致的不利滞后现象。因此,RTIL浓度可用于调节接近SSCS转变的程度,并使电容最大化。浓度与关联强度之间的相互作用产生了复杂的零电势相行为,包括一个三临界点和一条三相线,这与Blume-Capel稀释伊辛模型非常相似。此外,亲溶剂电极通过将溶剂分子吸引到电极并取代离子,有助于防止SSCS。亲溶剂电极在有限电势下会引发相变,此时表面电荷随着电势的小幅增加而迅速增加,导致电容和能量存储大幅增加。