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纳米尺度受限条件下离子液体-溶剂混合物组成的巨大变化

Large Variations in the Composition of Ionic Liquid-Solvent Mixtures in Nanoscale Confinement.

作者信息

Fang Alta, Smolyanitsky Alex

机构信息

Applied Chemicals and Materials Division , National Institute of Standards and Technology , Boulder , Colorado 80305 , United States.

出版信息

ACS Appl Mater Interfaces. 2019 Jul 31;11(30):27243-27250. doi: 10.1021/acsami.9b08764. Epub 2019 Jul 19.

Abstract

Mixtures of an ionic liquid with an organic solvent are widely used as electrolytes in supercapacitors where they are often confined in porous electrodes with pore widths only slightly larger than the sizes of bare ions or solvent molecules. The composition of the electrolyte inside these pores, which may depend on the pore width and choice of electrolyte, can affect supercapacitor performance but remains poorly understood. Here, we perform all-atom molecular dynamics simulations of solutions of two different ionic liquids in acetonitrile under confinement between graphene sheets forming slit pores of various widths. We observe significant oscillations in the in-pore ionic liquid mole fraction with varying pore widths. Ions are excluded from very narrow pores, while for pore widths that tightly fit a single layer of ions, we observe an in-pore ionic liquid mole fraction over three times greater than that in the bulk. At slightly larger pore widths, we observe for different ionic liquids either a nearly complete exclusion of ions from the pore or a slight depletion of ions, while ion population again increases as pore width further increases. We develop an analytical model that can qualitatively predict the in-pore ionic liquid mole fraction based on the effective molar volumes and the pore wall interaction energies of each species. Our work suggests a new avenue for tuning the ionic liquid mole fraction in nanopores with potentially significant implications for designing systems involving nanoconfined liquid electrolytes such as supercapacitors where in-pore ion population can affect charging dynamics.

摘要

离子液体与有机溶剂的混合物被广泛用作超级电容器中的电解质,在这些超级电容器中,它们通常被限制在孔径仅略大于裸离子或溶剂分子尺寸的多孔电极中。这些孔内电解质的组成可能取决于孔径和电解质的选择,会影响超级电容器的性能,但目前仍了解甚少。在这里,我们对两种不同离子液体在乙腈中的溶液进行了全原子分子动力学模拟,这些溶液被限制在形成各种宽度狭缝孔的石墨烯片之间。我们观察到,随着孔径的变化,孔内离子液体的摩尔分数会出现显著振荡。离子被排除在非常窄的孔之外,而对于恰好能容纳单层离子的孔径,我们观察到孔内离子液体的摩尔分数比本体中的高出三倍以上。在稍大的孔径下,对于不同的离子液体,我们观察到要么离子几乎完全被排除在孔外,要么离子略有耗尽,而随着孔径进一步增大,离子数量又会增加。我们开发了一个分析模型,该模型可以根据每种物质的有效摩尔体积和孔壁相互作用能定性地预测孔内离子液体的摩尔分数。我们的工作为调节纳米孔内离子液体的摩尔分数提供了一条新途径,这对于设计涉及纳米受限液体电解质的系统(如超级电容器,其中孔内离子数量会影响充电动力学)可能具有重要意义。

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Revisiting OPLS Force Field Parameters for Ionic Liquid Simulations.重新审视用于离子液体模拟的OPLS力场参数
J Chem Theory Comput. 2017 Dec 12;13(12):6131-6145. doi: 10.1021/acs.jctc.7b00520. Epub 2017 Nov 20.
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New Perspectives on the Charging Mechanisms of Supercapacitors.超级电容器充电机制的新视角
J Am Chem Soc. 2016 May 11;138(18):5731-44. doi: 10.1021/jacs.6b02115. Epub 2016 Apr 29.

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