Ion and Water Transport in Ion-Exchange Membranes for Power Generation Systems: Guidelines for Modeling

Int J Mol Sci. 2022 Dec 20;24(1):34. doi: 10.3390/ijms24010034.

Abstract

Artificial ion-exchange and other charged membranes, such as biomembranes, are self-organizing nanomaterials built from macromolecules. The interactions of fragments of macromolecules results in phase separation and the formation of ion-conducting channels. The properties conditioned by the structure of charged membranes determine their application in separation processes (water treatment, electrolyte concentration, food industry and others), energy (reverse electrodialysis, fuel cells and others), and chlore-alkali production and others. The purpose of this review is to provide guidelines for modeling the transport of ions and water in charged membranes, as well as to describe the latest advances in this field with a focus on power generation systems. We briefly describe the main structural elements of charged membranes which determine their ion and water transport characteristics. The main governing equations and the most commonly used theories and assumptions are presented and analyzed. The known models are classified and then described based on the information about the equations and the assumptions they are based on. Most attention is paid to the models which have the greatest impact and are most frequently used in the literature. Among them, we focus on recent models developed for proton-exchange membranes used in fuel cells and for membranes applied in reverse electrodialysis.

Keywords: charged ion-exchange membranes; conductivity; energy production and storage; ion and water transport; mathematical modeling; permeability; permselectivity; structure-property models; transport equations.

Publication types

  • Review

MeSH terms

  • Biological Transport
  • Ion Exchange
  • Ions / chemistry
  • Membranes, Artificial*
  • Protons*

Substances

  • Membranes, Artificial
  • Ions
  • Protons