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Updated: Sep 11, 2025

Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications
Published on: August 12, 2013
Polyethylene Glycol Surface Modification and Polythiophene Side-Chain Chemistry: A Combined Strategy toward
Han Li1, Haoze Ren1, Armando Rodriguez Campos2,3
1Department of Chemical and Bimolecular Engineering, Lehigh University, Bethlehem, Pennsylvania 18015, United States.
Abstract:
In the development of high-capacity lithium-ion batteries (LIBs), the combined optimization of active material interfaces and polymer binder chemistry plays a critical role in improving electrode performance and longevity. This work explores a dual design strategy incorporating polyethylene glycol (PEG) surface modification and carboxylated polythiophene side-chain tailoring to enhance the electrochemical behavior of magnetite (Fe3O4)-based anodes. PEG is employed to improve interfacial stability, while carboxylated polythiophene binders with varying alkyl side-chain lengthspoly-[3-(potassium-4-butanoate)-thiophene-2,5-diyl] (P3KBT), poly-[3-(potassium-5-pentanoate)-thiophene-2,5-diyl] (P3KPT), and poly-[3-(potassium-6-hexanoate)-thiophene-2,5-diyl] (P3KHT)are used to modulate molecular interactions and ion transport. Among these three analogs, the PEG-Fe3O4-P3KHT electrode exhibits superior ion-transfer kinetics, the highest capacity retention, and the lowest charge-transfer resistance after extended cycling. Compared to their non-PEG analogs, PEG-coated electrodes demonstrate enhanced structural integrity and electrochemical behavior, emphasizing the synergistic effects of surface modification and side-chain chemistry. These findings highlight the importance of interfacial interactions and molecular design in achieving robust and high-performance composite anodes for next-generation LIBs.
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