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Updated: Sep 19, 2025

Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications
Published on: August 12, 2013
Synergistic design of 3D Na3.2Zr1.9Ca0.1Si2PO12-based composite solid electrolyte via in-situ polymerization for
Jin-Seok Yang1, Omkar Sangabathula1, Chan-Jin Park1
1Department of Materials Science and Engineering, Chonnam National University, 77, Yongbong-ro, Bukgu, Gwangju 61186, South Korea.
Abstract:
The growing demand for sustainable and high-performance energy storage solutions has driven significant advancements in sodium-ion batteries (SIBs) as a cost-effective and eco-friendly alternative to lithium-ion batteries (LIBs). This study introduces a composite solid electrolyte (CSE) designed for solid-state sodium batteries (SSSBs), leveraging a 3D NASICON framework to address challenges associated with ionic conductivity, mechanical stability, and interfacial resistance. The CSE was synthesized through in-situ polymerization of butyl acrylate (BA) within a porous Na3.2Zr1.9Ca0.1Si2PO12 (NZCSP) framework fabricated via a tape casting method. The resulting structure achieved an ionic conductivity of 7.1 × 10-4 S cm-1 at 30 °C, electrochemical stability up to 4.88 V versus Na/Na+, and a sodium-ion transference number (tNa+) of 0.62. Na|CSE|Na symmetric cells exhibit remarkable sodium stripping/plating stability with minimal overpotential over 1000 h. Na|3D-NZCSP-CSE| Na3Mg0.5V1.95(PO4)3@C (NVMP@C) cells exhibited excellent performance, retaining 95 % of their initial capacity after 500 cycles at 1.0C and maintaining a specific discharge capacity of 94.4 mAh g-1. These findings demonstrate the potential of 3D framework-based CSEs to advance the practical application of SSSBs, offering a pathway to safer, more efficient, and cost-effective energy storage technologies.

