Dr Mehdi Tavakol mehdi.tavakol@durham.ac.uk
Postdoctoral Research Associate
Electrified Nanogaps under an AC Field: A Molecular Dynamics Study
Tavakol, Mahdi; Newbold, Alexander; Voïtchovsky, Kislon
Authors
Alex Newbold alex.d.newbold@durham.ac.uk
PGR Student Doctor of Philosophy
Professor Kislon Voitchovsky kislon.voitchovsky@durham.ac.uk
Professor
Abstract
The organization and dynamics of ions and water molecules at electrified solid–liquid interfaces are generally well understood under static fields, especially for macroscopic electrochemical systems. In contrast, studies involving alternating (AC) fields tend to be more challenging. In nanoscale systems, added complexity can arise from interfacial interactions and the need to consider ions and molecules explicitly. Here we use molecular dynamics (MD) simulations to investigate the behavior of NaCl aqueous solutions at different concentrations confined in nanogaps under AC fields ranging from 10 MHz to 10 GHz. We explore the impact of the gap size (2–60 nm) and of the solid material composing the electrode (silica, charged silica, or gold). Analysis of the transient and stable responses of the system shows that the total transverse dipole M z,total formed by the water molecules and the ions across the gap is always able to counter the applied field regardless of AC frequency, NaCl concentration, or electrode material. As expected, the ions lag at higher frequencies, leading to a capacitive behavior. This effect is fully compensated by water dipoles that lead the field, reaching a maximum lead at a specific frequency which depends on salt concentration and gap size. Changing the gap size affects the magnitude of M z,total. Finally, the electrode material is shown to affect the electrolyte behavior in the gap region. We anticipate these results to be useful for nanoscale dielectric spectroscopy, including scanning probes.
Citation
Tavakol, M., Newbold, A., & Voïtchovsky, K. (2024). Electrified Nanogaps under an AC Field: A Molecular Dynamics Study. Journal of Physical Chemistry C, 128(49), 21050-21059. https://doi.org/10.1021/acs.jpcc.4c05105
Journal Article Type | Article |
---|---|
Acceptance Date | Nov 18, 2024 |
Online Publication Date | Nov 29, 2024 |
Publication Date | Dec 12, 2024 |
Deposit Date | Dec 18, 2024 |
Publicly Available Date | Dec 18, 2024 |
Journal | Journal of Physical Chemistry C |
Print ISSN | 1932-7447 |
Electronic ISSN | 1932-7455 |
Publisher | American Chemical Society |
Peer Reviewed | Peer Reviewed |
Volume | 128 |
Issue | 49 |
Pages | 21050-21059 |
DOI | https://doi.org/10.1021/acs.jpcc.4c05105 |
Public URL | https://durham-repository.worktribe.com/output/3219655 |
Files
Published Journal Article
(3.9 Mb)
PDF
Publisher Licence URL
http://creativecommons.org/licenses/by/4.0/
You might also like
Towards local tracking of solvated metal ions at solid-liquid interfaces
(2024)
Journal Article
Ions Adsorbed at Amorphous Solid/Solution Interfaces Form Wigner Crystal-like Structures.
(2023)
Journal Article
Downloadable Citations
About Durham Research Online (DRO)
Administrator e-mail: dro.admin@durham.ac.uk
This application uses the following open-source libraries:
SheetJS Community Edition
Apache License Version 2.0 (http://www.apache.org/licenses/)
PDF.js
Apache License Version 2.0 (http://www.apache.org/licenses/)
Font Awesome
SIL OFL 1.1 (http://scripts.sil.org/OFL)
MIT License (http://opensource.org/licenses/mit-license.html)
CC BY 3.0 ( http://creativecommons.org/licenses/by/3.0/)
Powered by Worktribe © 2025
Advanced Search