Issue 9, 2014

Overlimiting current through ion concentration polarization layer: hydrodynamic convection effects

Abstract

In this work, we experimentally investigated an effect of the hydrodynamic convective flow on ion transport through a nanoporous membrane in a micro/nanofluidic modeled system. The convective motion of ions in an ion concentration polarization (ICP) layer was controlled by external hydrodynamic inflows adjacent to the nanoporous membrane. The ion depletion region, which is regarded as a high electrical resistance, was spatially confined to a triangular shape with the additional hydrodynamic convective flow, resulting in a significant alteration in the classical ohmic–limiting–overlimiting current characteristics. Furthermore, the extreme spatial confinement can completely eliminate the limiting current region at a higher flow rate, while the ICP layer still exists. The presented results enable one to obtain a high current value which turns out to be a high electrical power efficiency. Therefore, this mechanism could be utilized as an optimizing power consumption strategy for various electrochemical membrane systems such as fuel-cells, electro-desalination systems and nanofluidic preconcentrators, etc.

Graphical abstract: Overlimiting current through ion concentration polarization layer: hydrodynamic convection effects

Supplementary files

Article information

Article type
Paper
Submitted
17 Sep 2013
Accepted
11 Jan 2014
First published
20 Jan 2014

Nanoscale, 2014,6, 4620-4626

Overlimiting current through ion concentration polarization layer: hydrodynamic convection effects

I. Cho, G. Y. Sung and S. J. Kim, Nanoscale, 2014, 6, 4620 DOI: 10.1039/C3NR04961B

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