A Fluoropolymer‐Based Gel Polymer Electrolyte Crosslinked by NaBH$_4$ for Application in Room‐Temperature Sodium Batteries

Rechargeable sodium‐metal batteries are attractive for large‐scale energy storage due to the high abundance and low cost of sodium. However, their development is hindered by the limited availability of electrolytes that simultaneously provide high ionic conductivity, high Na metal compatibility, and suppressed anion mobility. Here, we report a chemically simple gel polymer electrolyte (GPE) based on a commercially available hydroxyl‐terminated fluoropolymer, in which a borate‐mediated network is generated in situ using sodium borohydride as a low‐cost crosslinking agent. The resulting GPE exhibits excellent Na$^+$ ionic conductivity up to 1.6 × 10$^{−3}$Scm$^{−1}$ at 30 °C and near single‐ion conduction (Na$^+$ ion transference number up to ~0.84). Galvanostatic cycling of a symmetric Na||Na cell using glass fiber‐supported GPE exhibits stable performance over 750 cycles, demonstrating excellent GPE compatibility with Na metal. A coin cell assembled from an Na anode and a Na$_3$V$_2$(PO$_4$)$_3$/C cathode with this GPE exhibits an exceptional cycling performance with over 2000 charge–discharge cycles within the voltage range from 1 to 2 V.

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Publication Details

Journal
KITopen
Published
2026-08-27
DOI
https://doi.org/10.5445/ir/1000196556
Primary Topic
Advanced Battery Materials and Technologies
Type
article
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article

A Fluoropolymer‐Based Gel Polymer Electrolyte Crosslinked by NaBH$_4$ for Application in Room‐Temperature Sodium Batteries

Alexander J. C. Kuehne, Ziyuan Lyu, Litwin Jacob, Chinmaya Mirle et al.
KITopen
Advanced Battery Materials and Technologies
article

A Fluoropolymer‐Based Gel Polymer Electrolyte Crosslinked by NaBH$_4$ for Application in Room‐Temperature Sodium Batteries

Alexander J. C. Kuehne, Ziyuan Lyu, Litwin Jacob, Chinmaya Mirle, Dominic Bresser
article en

Abstract

Rechargeable sodium‐metal batteries are attractive for large‐scale energy storage due to the high abundance and low cost of sodium. However, their development is hindered by the limited availability of electrolytes that simultaneously provide high ionic conductivity, high Na metal compatibility, and suppressed anion mobility. Here, we report a chemically simple gel polymer electrolyte (GPE) based on a commercially available hydroxyl‐terminated fluoropolymer, in which a borate‐mediated network is generated in situ using sodium borohydride as a low‐cost crosslinking agent. The resulting GPE exhibits excellent Na$^+$ ionic conductivity up to 1.6 × 10$^{−3}$Scm$^{−1}$ at 30 °C and near single‐ion conduction (Na$^+$ ion transference number up to ~0.84). Galvanostatic cycling of a symmetric Na||Na cell using glass fiber‐supported GPE exhibits stable performance over 750 cycles, demonstrating excellent GPE compatibility with Na metal. A coin cell assembled from an Na anode and a Na$_3$V$_2$(PO$_4$)$_3$/C cathode with this GPE exhibits an exceptional cycling performance with over 2000 charge–discharge cycles within the voltage range from 1 to 2 V.

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Advanced Battery Materials and Technologies
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