Impedance of nanocapacitors from molecular simulations to understand the dynamics of confined electrolytes.

Proc Natl Acad Sci U S A

Physico-Chimie des Électrolytes et Nanosystèmes Interfaciaux, CNRS, Sorbonne Université, Physicochimie des Électrolytes et Nanosystèmes Interfaciaux (PHENIX), CNRS, Sorbonne Université, Paris F-75005, France.

Published: April 2024

AI Article Synopsis

  • Nanoelectrochemical devices are emerging as versatile tools for applications like sensing and energy storage, crucial for understanding electrode/electrolyte interactions.
  • This study uses molecular dynamics simulations to analyze the impedance of gold-aqueous electrolyte nanocapacitors, linking their behavior to the complex conductivity of bulk electrolytes and creating effective circuit models.
  • Findings reveal that the electrode/electrolyte interface acts mainly as a capacitor, with electrolyte responses showing bulk characteristics even at tiny interelectrode distances, while uncovering crucial insights into ionic and solvent dynamics that influence impedance measurements.

Article Abstract

Nanoelectrochemical devices have become a promising candidate technology across various applications, including sensing and energy storage, and provide new platforms for studying fundamental properties of electrode/electrolyte interfaces. In this work, we employ constant-potential molecular dynamics simulations to investigate the impedance of gold-aqueous electrolyte nanocapacitors, exploiting a recently introduced fluctuation-dissipation relation. In particular, we relate the frequency-dependent impedance of these nanocapacitors to the complex conductivity of the bulk electrolyte in different regimes, and use this connection to design simple but accurate equivalent circuit models. We show that the electrode/electrolyte interfacial contribution is essentially capacitive and that the electrolyte response is bulk-like even when the interelectrode distance is only a few nanometers, provided that the latter is sufficiently large compared to the Debye screening length. We extensively compare our simulation results with spectroscopy experiments and predictions from analytical theories. In contrast to experiments, direct access in simulations to the ionic and solvent contributions to the polarization allows us to highlight their significant and persistent anticorrelation and to investigate the microscopic origin of the timescales observed in the impedance spectrum. This work opens avenues for the molecular interpretation of impedance measurements, and offers valuable contributions for future developments of accurate coarse-grained representations of confined electrolytes.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11067016PMC
http://dx.doi.org/10.1073/pnas.2318157121DOI Listing

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Impedance of nanocapacitors from molecular simulations to understand the dynamics of confined electrolytes.

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Physico-Chimie des Électrolytes et Nanosystèmes Interfaciaux, CNRS, Sorbonne Université, Physicochimie des Électrolytes et Nanosystèmes Interfaciaux (PHENIX), CNRS, Sorbonne Université, Paris F-75005, France.

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  • Findings reveal that the electrode/electrolyte interface acts mainly as a capacitor, with electrolyte responses showing bulk characteristics even at tiny interelectrode distances, while uncovering crucial insights into ionic and solvent dynamics that influence impedance measurements.
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