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Updated: Apr 7, 2026

Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications
Published on: August 12, 2013
機械的強度と導電性に優れたリグニン由来二重ネットワーク共晶電解質
Yixue Chen1, Haotian Xie1, Qihang Fan1
1School of Chemistry and Chemical Engineering, Guangxi University, Nannin 530004, China.
Abstract:
Conventional eutectic quasi-solid electrolytes (EQSEs), despite their intrinsic safety and sustainability, are fundamentally limited by the mechanical-conductivity trade-off, severely restricting practical deployment. Here, a lignin-engineered double-cross-linked EQSE is reported that overcomes these challenges through synergistic dual-dynamic networks: (1) an organic polyacrylamide/poly(acrylic acid) (PAM/PAA) framework establishing continuous ion-transport channels and (2) Fe3+-coordinated cross-links coupled with hydrogen bonding resolving the mechanical-conductivity trade-off. The resultant DES-LN-Fe3+ electrolyte simultaneously achieves a high ionic conductivity of 0.031 S cm-1 at 25 °C and exceptional ductility (851% strain). When deployed in flexible supercapacitors, it delivers a high specific capacitance of 310.6 F g-1 (0.1 A g-1) with exceptional low-temperature resilience (45.8% capacity retention at -40 °C) and cycling stability (95.7% after 10,000 cycles). Notably, the electrolyte doubles as a high-sensitivity strain sensor (gauge factor = 3.183), enabling real-time monitoring of biomechanical motions. This work establishes a dynamic dual-cross-linking paradigm to design multifunctional quasi-solid electrolytes for integrated energy storage and sensing platforms in extreme environments.
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関連する概念動画
Theory of Strong Electrolytes
Electrochemical Cells
The Electrical Double Layer