Variational approach for electrolyte solutions: from dielectric interfaces to charged nanopores
Sahin Buyukdagli, Manoel Manghi, and John Palmeri

TL;DR
This paper develops a variational electrostatic theory for electrolyte solutions near dielectric interfaces, capturing non-linear effects like surface charge, solvation, and image forces, and applies it to nanopore models with results validated by simulations.
Contribution
It introduces a variational approach that extends beyond mean-field theory to accurately model electrolyte behavior at dielectric interfaces and nanopores.
Findings
Charge separation occurs at neutral interfaces due to image forces.
Ion exclusion zones are characterized near charged surfaces.
Counterion partitioning depends on pore size and surface charge.
Abstract
A variational theory is developed to study electrolyte solutions, composed of interacting point-like ions in a solvent, in the presence of dielectric discontinuities and charges at the boundaries. Three important and non-linear electrostatic effects induced by these interfaces are taken into account: surface charge induced electrostatic field, solvation energies due to the ionic cloud, and image charge repulsion. Our variational equations thus go beyond the mean-field theory. The influence of salt concentration, ion valency, dielectric jumps, and surface charge is studied in two geometries. i) A single neutral air-water interface with an asymmetric electrolyte. A charge separation and thus an electrostatic field gets established due to the different image charge repulsions for coions and counterions. Both charge distributions and surface tension are computed and compared to previous…
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