Competition between Born solvation, dielectric exclusion, and Coulomb attraction in spherical nanopores
Th\'eo Hennequin, Manoel Manghi, John Palmeri

TL;DR
This paper investigates how dielectric mismatch, Born solvation energy, and Coulomb attraction influence ion behavior in spherical nanopores, revealing their interplay affects ion exclusion, phase separation, and transport properties.
Contribution
It provides an analytical framework to understand the combined effects of dielectric mismatch, Born energy, and Coulomb forces on ions in nanopores, including phase diagrams and osmotic pressure signatures.
Findings
Dielectric mismatch significantly alters ion partitioning.
Born solvation energy impacts phase separation in confined geometries.
Electrostatic attraction and exclusion effects compete in charged nanopores.
Abstract
The recent measurement of a very low dielectric constant, , of water confined in nanometric slit pores leads us to reconsider the physical basis of ion partitioning into nanopores. For confined ions in chemical equilibrium with a bulk of dielectric constant , three physical mechanisms, at the origin of ion exclusion in nanopores, are expected to be modified due to this dielectric mismatch: dielectric exclusion at the water-pore interface (with membrane dielectric constant, ), the solvation energy related to the difference in Debye-H\"uckel screening parameters in the pore, , and in the bulk , and the classical Born solvation self-energy proportional to . Our goal is to clarify the interplay between these three mechanisms and investigate the role played by the Born contribution in ionic…
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