A Three-Dimensional Framework for Rational Ion Separation with Polymeric Membrane Systems

This review treats selective ion separation in polymeric membrane systems as a design problem rather than as a fixed material property. To address the gap between laboratory performance and process-level relevance, a three-dimensional analytical framework that integrates transport mechanism, dynamic structural state, and separation-matrix complexity is proposed. Five research streams are compared: polymer inclusion membranes, ion-exchange membranes and electrodialysis, nanostructured and subnanometric frameworks, composite architectures, and polymer inclusion membrane – electrodialysis (PIM-ED) hybrids. The comparison shows that selectivity is governed not only by the nominal membrane mechanism, but also by hydration-driven structural changes and by the complexity of the operating matrix. Overall, the framework provides a common basis for interpreting selectivity, comparing membrane families, and guiding rational design for ion-separation processes.

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Publication Details

Journal
Membranes
Published
2026-09-15
DOI
https://doi.org/10.3390/membranes16090302
Primary Topic
Membrane-based Ion Separation Techniques
Type
article
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article

A Three-Dimensional Framework for Rational Ion Separation with Polymeric Membrane Systems

Claudia Ivone Piñón-Balderrama, Erasto Armando Zaragoza‐Contreras, Claudia A. Hernández‐Escobar, Guillermo González‐Sánchez et al.
Membranes
Membrane-based Ion Separation Techniques
article

A Three-Dimensional Framework for Rational Ion Separation with Polymeric Membrane Systems

Claudia Ivone Piñón-Balderrama, Erasto Armando Zaragoza‐Contreras, Claudia A. Hernández‐Escobar, Guillermo González‐Sánchez, América Susana Mares-García, Anayansi Estrada‐Monje, Miguel Alonso Orozco-Alvarado, George Bess-Palacios
article en

Abstract

This review treats selective ion separation in polymeric membrane systems as a design problem rather than as a fixed material property. To address the gap between laboratory performance and process-level relevance, a three-dimensional analytical framework that integrates transport mechanism, dynamic structural state, and separation-matrix complexity is proposed. Five research streams are compared: polymer inclusion membranes, ion-exchange membranes and electrodialysis, nanostructured and subnanometric frameworks, composite architectures, and polymer inclusion membrane – electrodialysis (PIM-ED) hybrids. The comparison shows that selectivity is governed not only by the nominal membrane mechanism, but also by hydration-driven structural changes and by the complexity of the operating matrix. Overall, the framework provides a common basis for interpreting selectivity, comparing membrane families, and guiding rational design for ion-separation processes.

MembranesVol. 16(9)
Centro de Investigación en Materiales Avanzados (MX), Innovative Research (United States) (US)
Openalex Percentile: Top 20%
Membrane-based Ion Separation Techniques
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A Three-Dimensional Framework for Rational Ion Separation with Polymeric Membrane Systems — Claudia Ivone Piñón-Balderrama, Erasto Armando Zaragoza‐Contreras, et al. · Membranes (2026) | TGRS Research Map | TGRS