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通过分子动力学模拟理解离子液体双电层电容器的充电动力学。

Understanding the charging dynamics of an ionic liquid electric double layer capacitor via molecular dynamics simulations.

机构信息

Department of Chemistry, Seoul National University, Seoul 08826, Korea.

出版信息

Phys Chem Chem Phys. 2019 Mar 27;21(13):6790-6800. doi: 10.1039/c8cp07200k.

Abstract

We investigate the charging phenomena of an electric double layer capacitor (EDLC) by conducting both equilibrium and non-equilibrium molecular dynamics (MD) simulations. A graphene electrode and 1-ethyl-3-methylimidazolium thiocyanate ([EMIM]+[SCN]-) ionic liquid were used as a system for the EDLC. We clarify the ionic layer structure and show that an abrupt change of the ionic layers leads to a high differential capacitance of the EDLC. The charging simulations reveal that the charging dynamics of the EDLC is highly dependent on the rearrangement of the ionic layer structure. Particularly, the electrode charge during the charging process is consistent with the perpendicular displacement of ionic liquid molecules. From this property, we analyze the contribution of each molecular ion to the electrode charge stored during charging. Charging of the EDLC is largely dependent on the desorption of the co-ions from the electrode rather than the adsorption of the counter-ions. In addition, the contribution of bulk ions to the charge stored in the EDLC is as important as that of ions adjacent to the electrode surface contrary to the conventional viewpoint. From these results, we identify the charging mechanism of the EDLC and discuss the relevance to experimental results. Our findings in the present study are expected to play an important role in designing an efficient EDLC with a novel perspective on the charging of the EDLC.

摘要

我们通过进行平衡和非平衡分子动力学(MD)模拟来研究双电层电容器(EDLC)的充电现象。以石墨烯电极和 1-乙基-3-甲基咪唑𬭩硫氰酸盐([EMIM]+[SCN]-)离子液体作为 EDLC 的体系。我们阐明了离子层结构,并表明离子层的突然变化导致 EDLC 的高微分电容。充电模拟表明,EDLC 的充电动力学高度依赖于离子层结构的重新排列。特别是,在充电过程中电极的电荷与离子液体分子的垂直位移一致。从这个特性,我们分析了在充电过程中每个分子离子对存储在电极上的电荷的贡献。EDLC 的充电在很大程度上取决于共离子从电极上的解吸,而不是反离子的吸附。此外,与传统观点相反,与靠近电极表面的离子相比,体相离子对存储在 EDLC 中的电荷的贡献同样重要。根据这些结果,我们确定了 EDLC 的充电机制,并讨论了与实验结果的相关性。本研究中的发现有望从新的角度为设计高效的 EDLC 提供重要依据,对 EDLC 的充电具有重要意义。

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