Zhang Kun, Wei Chunlei, Zheng Menglian, Huang Jingyun, Zhou Guohui
Institute of Wenzhou, Zhejiang University, Wenzhou 325036, China.
Institute of Thermal Science and Power Systems, Zhejiang University, Hangzhou 310027, China.
Molecules. 2024 Mar 11;29(6):1246. doi: 10.3390/molecules29061246.
Due to the unique properties of room temperature ionic liquids (RTILs), most researchers' interest in RTIL-based electrolytes in electric double-layer capacitors (EDLCs) stems from molecular simulations, which are different from experimental scientific research fields. The knowledge of RTIL-based electrolytes in EDLCs began with a supposition obtained from the results of molecular simulations of molten salts. Furthermore, experiments and simulations were promoted and developed rapidly on this topic. In some instances, the achievements of molecular simulations are ahead of even those obtained from experiments in quantity and quality. Molecular simulations offer more information on the impacts of overscreening, quasicrowding, crowding, and underscreening for RTIL-based electrolytes than experimental studies, which can be helpful in understanding the mechanisms of EDLCs. With the advancement of experimental technology, these effects have been verified by experiments. The simulation prediction of the capacitance curve was in good agreement with the experiment for pure RTILs. For complex systems, such as RTIL-solvent mixtures and RTIL mixture systems, both molecular simulations and experiments have reported that the change in capacitance curves is not monotonous with RTIL concentrations. In addition, there are some phenomena that are difficult to explain in experiments and can be well explained through molecular simulations. Finally, experiments and molecular simulations have maintained synchronous developments in recent years, and this paper discusses their relationship and reflects on their application.
由于室温离子液体(RTILs)的独特性质,大多数研究人员对双电层电容器(EDLCs)中基于RTILs的电解质的兴趣源于分子模拟,这与实验科学研究领域不同。EDLCs中基于RTILs的电解质的知识始于从熔盐分子模拟结果中获得的一个假设。此外,关于这个主题的实验和模拟得到了迅速的推进和发展。在某些情况下,分子模拟的成果在数量和质量上甚至领先于实验所取得的成果。与实验研究相比,分子模拟能提供更多关于过屏蔽、准拥挤、拥挤和欠屏蔽对基于RTILs的电解质影响的信息,这有助于理解EDLCs的机制。随着实验技术的进步,这些效应已通过实验得到验证。对于纯RTILs,电容曲线的模拟预测与实验结果吻合良好。对于复杂体系,如RTIL-溶剂混合物和RTIL混合体系,分子模拟和实验均表明,电容曲线随RTIL浓度的变化并非单调。此外,还存在一些实验中难以解释的现象,通过分子模拟却能得到很好的解释。最后,近年来实验和分子模拟保持了同步发展,本文讨论了它们之间的关系并对其应用进行了反思。