Authors
Mohammad Moulod, Saeed Moghaddam
Published in
Journal of applied physics. Volume 140. Issue 3. Jul 21, 2026. Epub Jul 16, 2026.
Abstract
In this study, the application of electrodialysis for ion recovery as an active transport mechanism is evaluated where a low flow rate of deionized water containing 100 mM NaCl concentration, close to that of total blood plasma concentration, enters an electrodialysis cell including two inert graphite electrodes to apply electric field across an anion exchange membrane (AEM) and a cation exchange membranes (CEM) to separate the ions. A mathematical model of the cell is provided using Extended Nernst-Plank (ENP) equation, the resistance of the cell components are measured by a Luggin-Capillary device, Electro Impedance Spectroscopy (EIS) is used to study the ED cell behavior, and chronoamperometry is used to measure the clearance performance for various combinations of membranes. Results indicate that the electrodialysis cell with a single stack of AEM-CEM, effective area of 4×4 cm2, and intermembrane spacing of 1 mm at voltage of 4 V and volumetric flow rate of 30 ml/h can recover 40% of the ions with high current efficiency over 97%. A modular design using alternating AEM and CEM membranes in series and parallel will be able to process the desired volume of solution and achieve the required ion recovery rate. This study provides insight into the use of electrodialysis in the artificial kidney applications where a miniaturized electrodialysis cell can reduce the device size significantly and allow for the emergence of a long-awaited wearable devices to replace dialysis.
PMID:
42534163
Bibliographic data and abstract were imported from PubMed on 31 Jul 2026.
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