Behavior of Embedded Cation-Exchange Particles in a DC Electric Field.

Int J Mol Sci

University of Chemistry and Technology Prague, Department of Chemical Engineering, Technická 3, Prague 16628, Czech Republic.

Published: July 2019

AI Article Synopsis

  • Electrodialysis and electrodeionization rely heavily on the properties of ion-exchange membranes, which are influenced by their macroscopic and microscopic heterogeneity.
  • Understanding the detailed structure of these heterogeneous membranes is crucial since it affects both their performance and cost-effectiveness in separation processes.
  • This study focuses on the electrokinetic behavior of structured cation-exchange resin particle systems, employing various configurations to analyze how changes in particle arrangement impact the overall membrane behavior and properties through experimental measurements.

Article Abstract

Electrodialysis and electrodeionization are separation processes whose performance depends on the quality and properties of ion-exchange membranes. One of the features that largely affects these properties is heterogeneity of the membranes both on the macroscopic and microscopic level. Macroscopic heterogeneity is an intrinsic property of heterogeneous ion-exchange membranes. In these membranes, the functional ion-exchange component is dispersed in a non-conductive binder. The functional component is finely ground ion-exchange resin particles. The understanding of the effect of structure on the heterogeneous membrane properties and behavior is thus of utmost importance since it does not only affect the actual performance but also the cost and therefore competitiveness of the aforementioned separation processes. Here we study the electrokinetic behavior of cation-exchange resin particle systems with well-defined geometrical structure. This approach can be understood as a bottom up approach regarding the membrane preparation. We prepare a structured cation-exchange membrane by using its fundamental component, which is the ion exchange resin. We then perform an experimental study with four different experimental systems in which the number of used cation-exchange particles changes from 1 to 4. These systems are studied by means of basic electrochemical characterization measurements, such as measurement of current-voltage curves and direct optical observation of phenomena that occur at the interface between the ion-exchange system and the adjacent electrolyte. Our work aims at better understanding of the relation between the structure and the membrane properties and of how structure affects electrokinetic behavior of these systems.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6678748PMC
http://dx.doi.org/10.3390/ijms20143579DOI Listing

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