Coupled concentration-charge dynamics in 1:1 electrolytes with unequal diffusion coefficients: Local transient response and fluctuations

T Thê Hoang Ngoc Minh (Department of Civil and Environmental Engineering, Princeton University 1 , Princeton, New Jersey 08544,) S Sleeba Varghese (Physicochimie des Électrolytes et Nanosystèmes Interfaciaux, Sorbonne Université, CNRS 2 , Paris 75005,) B Benjamin Rotenberg (Physicochimie des Électrolytes et Nanosystèmes Interfaciaux, Sorbonne Université, CNRS 2 , Paris 75005,)

Abstract

We investigate the coupled dynamics of concentration and charge in asymmetric 1:1 electrolytes, focusing on the interplay between diffusion asymmetry and external electric fields. Using Brownian dynamics simulations and linearized stochastic density functional theory (SDFT), we analyze the transient response of charge and number currents to inhomogeneous electric fields, as well as the steady-state spatio-temporal fluctuations under uniform fields. Our results reveal that asymmetry in ionic diffusion coefficients introduces a non-trivial coupling between charge and number transport, which modifies the two relaxation modes already present in symmetric electrolytes—a fast one associated with charge relaxation and a slow one linked to ambipolar diffusion. The dynamics are further modulated by the applied field, which enhances diffusion, alters screening lengths, and induces oscillatory behavior in the relaxation modes. The SDFT framework provides closed-form expressions for the intermediate scattering matrix, capturing the dynamics of density fluctuations and cross-correlations between number and charge. These predictions are validated by simulations, demonstrating excellent agreement across a wide range of wave vectors, both at equilibrium and under a finite electric field. Our findings highlight the critical role of diffusion asymmetry and external fields in tuning the transport properties of electrolytes, with implications for nanofluidic devices, energy harvesting, and iontronic circuits. This study bridges theoretical insights with practical applications, offering a robust framework for understanding and controlling electrolyte dynamics in asymmetric systems.

Article Details

Volume / Issue Vol. 164, Issue 19
Published May 21, 2026
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (3)

T

Thê Hoang Ngoc Minh

Department of Civil and Environmental Engineering, Princeton University 1 , Princeton, New Jersey 08544,

S

Sleeba Varghese

Physicochimie des Électrolytes et Nanosystèmes Interfaciaux, Sorbonne Université, CNRS 2 , Paris 75005,

B

Benjamin Rotenberg

Physicochimie des Électrolytes et Nanosystèmes Interfaciaux, Sorbonne Université, CNRS 2 , Paris 75005,