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Updated: Jan 12, 2026

Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications
Published on: August 12, 2013
Semi-interpenetrating polymer network ion-solvating membrane with enhanced conductivity and stability for potential
Mina Jellab1, Loubna Ahsaini1, Mustapha Matrouf1
1Materials Science, Energy and Nanoengineering Department (MSN), Mohammed VI Polytechnic University (UM6P) Lot 660 - Hay Moulay Rachid Ben Guerir 43150 Morocco fatimazahra.semlali@um6p.ma fouad.ghamouss@um6p.ma.
Abstract:
This study presents a new semi-interpenetrating polymer network (semi-IPN) membrane, combining polyvinyl alcohol (PVA) cross-linked with citric acid (CA) and physically entangled with of polyvinylpyrrolidone (PVP) via solvent casting. To achieve a suitable balance between ionic conductivity, mechanical stability, and long-term chemical resistance, a series of PVA-CA:PVPX membranes were synthesized and subsequently subjected to thermal curing and KOH doping. Optimized PVP content stabilizes the semi-IPN structure by reinforcing H-bonding with PVA, resulting in a well-entangled polymer matrix. However, excessive PVP disrupts polymer chain interactions, leading to excessive microphase separation, extreme swelling, and diminished mechanical integrity. Thermal curing further strengthens crosslinking, enhancing mechanical properties (1270 MPa tensile modulus, 413% elongation) while controlling water uptake (193.96%). Additionally, KOH doping introduces carboxylate groups, increasing OH- mobility (6.56 mS cm-1) and improving electrochemical performance. The optimized membrane demonstrates high oxidative stability, retaining 90.90% of its mass after prolonged exposure while maintaining structural integrity over three months in alkaline conditions. Furthermore, its enhanced thermal stability extends operational lifespan under elevated temperatures, making it a promising candidate for long-term electrolysis applications. These findings establish semi-IPN structuring as an effective strategy for developing high-performance membranes suited for next-generation alkaline water electrolyzers.
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