English

Enhanced Ionic Conductivity of confined Ionic-Liquid in Angstrom-scale 2D channels

Chemical Physics 2026-05-19 v1

Abstract

Understanding ion-transport under molecular confinement is essential for developing next-generation energy technologies, where ionic motion often occurs within nanoscale or angstrom-scale channels. In this study, we use the model system of 1-ethyl-3-methylimidazolium bis(trifluoromethanesulfonyl)imide ([EMIM]+[TFSI]-) confined within angstrom-scale slit-shaped 2D channels fabricated via van der Waals assembly to exemplify a broader class of confined ionic liquids.This system provides a well-defined platform to unravel generic features of ion transport under extreme confinement. By systematically varying the channel height h, we demonstrate a non-monotonic conductivity dependence on confinement, with a maximum 26.7 S/m at confining height, 1.02 nm, over 30 times of the bulk value for these ionic liquids. The variation of conductivity with confinement arises from structural rearrangements of ionic layers in the slit channel. Enhanced values of conductivity occur under confinements that promote the breakup of ion pairs and larger clusters, thereby increasing the number of free ions. Stronger confinement (h, 0.68 nm) also leads to steric hindrance, lowering conductivity below bulk values. Furthermore, introducing co-solvents with a higher dielectric constant and lower viscosity, such as acetonitrile (ACN), amplifies conductivity to ~145 S/m. Comparative studies using ACN, dimethyl carbonate and diethyl carbonate highlight that both large dielectric constant and low viscosity critically govern ion transport under confinement, as also supported by molecular dynamics simulations. Overall, this work establishes confined [EMIM]+[TFSI]- as a representative system for probing mechanisms of nano- and angstrom-scale ion transport, demonstrating how nanoconfinement and the solvent environment can be systematically tuned to manipulate ionic conductivity at the molecular level.

Keywords

Cite

@article{arxiv.2605.18531,
  title  = {Enhanced Ionic Conductivity of confined Ionic-Liquid in Angstrom-scale 2D channels},
  author = {Jing Yang and Raj Kumar Gogoi and Chen Ming and Louis A. Maduro and Abdulghani Ismail and Hiran Jyothilal and Kalluvadi Veetil Saurav and Rongrong Qi and Ravalika Sajja and Ashok Keerthi and Robert A. W. Dryfe and Alexei A Kornyshev and Boya Radha},
  journal= {arXiv preprint arXiv:2605.18531},
  year   = {2026}
}

Comments

12 pages, 5 figures