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Updated: Jan 20, 2026

Bathophenanthroline Sulfonate-Based Colorimetric Assay: A Simple and Rapid Method for Quantitation of Non-Heme Iron in Mouse Liver Tissue
Balanced Ionic Conductivity and Permselectivity of Cation Exchange Membranes Prepared from Sulfonated Poly(ether
Hussien K Srour1, Mizuki Inoue1, Edhuan Ismail1
1Research Center for Macromolecules and Biomaterials, National Institute for Materials Science, 1-1 Namiki, Tsukuba 305-0044, Japan.
Sulfonated poly-(ether sulfone) (S-PES) membranes were synthesized with controlled sulfonation. The optimized membrane achieved an excellent balance of ionic conductivity and permselectivity, showing promise for desalination and energy production.
Area of Science:
- Polymer Chemistry
- Materials Science
- Electrochemistry
Background:
- Poly-(ether sulfone) (PES) is a versatile polymer.
- Developing efficient cation exchange membranes (CEMs) is crucial for various electrochemical applications.
Purpose of the Study:
- To synthesize sulfonated poly-(ether sulfone) (S-PES) with tunable properties.
- To evaluate the performance of S-PES membranes as CEMs for desalination and energy generation.
Main Methods:
- Postsulfonation of PES using chlorosulfonic acid.
- Controlled degree of sulfonation (DS) from 13.2% to 36.2%.
- Characterization using elemental analysis, NMR, FT-IR, and performance testing of cast membranes.
Main Results:
- S-PES membranes with varying DS were successfully fabricated.
- The membrane with 32.4% DS exhibited high ionic conductivity (16.85 mS cm⁻¹) and permselectivity (98.0%).
- An optimal balance between conductivity and permselectivity was achieved through DS control.
Conclusions:
- The synthesized S-PES membranes offer a promising alternative to existing CEMs.
- Optimized S-PES membranes show potential for electrodialysis and salinity gradient power generation.
- This study highlights the critical role of DS in tailoring membrane properties.
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