The current-voltage relation of a pore and its asymptotic behavior in a Nernst-Planck model

Author:

Marius Bîrlea Nicolae1,Bîrlea Sînziana Iulia2

Affiliation:

1. Department of Physics, Technical University of Cluj-Napoca , Cluj-Napoca , Romania

2. Electrical & Electronic Engineering, National University of Ireland , Galway , Galway , Ireland

Abstract

Abstract A model for current-voltage nonlinearity and asymmetry is a good starting point for explaining the electrical behavior of nanopores in synthetic or biological membranes. Using a Nernst-Planck model, we found three behaviors for the calculated current density in a membrane's pore as a function of voltage: a quasi-ohmic, slow rising linear current at low voltages; a nonlinear current at intermediate voltages; and a non-ohmic, fast rising linear current at large voltages. The slope of the quasi-ohmic current depends mainly on the height of the energy barrier inside the pore, w, through an exponential term, e w . The magnitude of the non-ohmic linear current is controlled by the potential energy gradient at the pore entrance, w/r. The current-voltage relationship is asymmetric if the ion's potential energy inside the pore has an asymmetric triangular profile. The model has only two assumed parameters, the energy barrier height, w, and the relative size of the entrance region of the pore, r, which is a useful feature for fitting and interpreting experimental data.

Publisher

Walter de Gruyter GmbH

Subject

Biomedical Engineering,Biophysics

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1. Regulation of ionic current through a surround-gated nanopore via field effect control;Physical Chemistry Chemical Physics;2022

2. Ionic transport through a protein nanopore: a Coarse-Grained Molecular Dynamics Study;Scientific Reports;2019-10-31

3. How to Describe the Skin’s Electrical Nonlinear Response;International Conference on Advancements of Medicine and Health Care through Technology; 12th - 15th October 2016, Cluj-Napoca, Romania;2017

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