A Modified Poisson--Nernst--Planck Model with Excluded Volume Effect: Theory and Numerical Implementation
Farjana Siddiqua, Zhongming Wang, Shenggao Zhou

TL;DR
This paper introduces a modified Poisson--Nernst--Planck model incorporating excluded volume effects, providing a more accurate description of ionic transport in confined environments, along with a stable numerical scheme and comprehensive analysis.
Contribution
A new MPNP model with excluded volume effects is derived, along with a second-order accurate numerical scheme and theoretical analysis of solutions and screening lengths.
Findings
Excluded volume significantly affects ionic dynamics.
The numerical scheme conserves mass and dissipates energy.
Numerical results confirm the model's accuracy and impact of volume exclusion.
Abstract
The Poisson--Nernst--Planck (PNP) equations have been widely applied to describe ionic transport in ion channels, nanofluidic devices, and many electrochemical systems. Despite their wide applications, the PNP equations fail in predicting dynamics and equilibrium states of ionic concentrations in confined environments, due to the ignorance of the excluded volume effect. In this work, a simple but effective modified PNP (MPNP) model with the excluded volume effect is derived, based on a modification of diffusion coefficients of ions. At the steady state, a modified Poisson--Boltzmann (MPB) equation is obtained with the help of the Lambert-W special function. The existence and uniqueness of a weak solution to the MPB equation are established. Further analysis on the limit of weak and strong electrostatic potential leads to two modified Debye screening lengths, respectively. A numerical…
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Taxonomy
TopicsElectrostatics and Colloid Interactions · Nanopore and Nanochannel Transport Studies · Microfluidic and Bio-sensing Technologies
