Effects of electrostatic correlations on electrokinetic phenomena
Brian D. Storey, Martin Z. Bazant

TL;DR
This paper develops a modified Poisson equation to incorporate electrostatic correlations in electrokinetic phenomena, extending classical models to better describe systems with high ion concentrations, multivalent ions, or ionic liquids.
Contribution
It introduces a variationally derived, fourth-order continuum model that accounts for electrostatic correlations via a differential operator dielectric permittivity, capturing effects beyond mean-field theory.
Findings
Charge-density oscillations reduce electro-osmotic flow.
Over-screening can cause flow reversal.
The model aligns with detailed simulations and explains complex electrokinetic behaviors.
Abstract
Classical theory of the electric double layer is based on the fundamental assumption of a dilute solution of point ions. There are a number of situations such as high applied voltages, high concentration of electrolytes, systems with multivalent ions, or solvent-free ionic liquids where the classical theory is often applied but the fundamental assumptions cannot be justified. Perhaps the most basic assumption underlying continuum models in electrokinetics is the mean-field approximation, that the electric field acting on each discrete ion is self-consistently determined by the local mean charge density. This paper considers situations where the mean-field approximation breaks down and electrostatic correlations become important. A fourth-order modified Poisson equation is developed that accounts for electrostatic correlations and captures the essential features in a simple continuum…
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Taxonomy
TopicsElectrostatics and Colloid Interactions · Microfluidic and Capillary Electrophoresis Applications · Geophysical and Geoelectrical Methods
