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Polyaniline and Polyacrylic Acid Reinforced Mechanical Strength and Conductivity at the Interface of Silicon Anodes
Fulin Wang1, Yulin Wu1, Wenhui Fu1
1College of Chemical Engineering, University of Chinese Academy of Sciences, Beijing 100049, China.
Abstract:
The poor cycling stability of silicon-based anodes in lithium-ion batteries (LIB) presents a thorny issue. We devise a strategy to regulate covalent and noncovalent interactions at the silicon-based anode interface, balancing electrode conductivity and stability. The polyaniline-poly(acrylic acid)-sodium carboxymethyl cellulose (PPC) binder is synthesized via in situ polymerization/thermal cross-linking, which utilizes the noncovalent interactions of polyaniline and the covalent interactions of O═C-O-M (Si/Cu/C) bonds to resolve the issue of asynchrony between conductivity and stability. The continuous conductive network structure formed by polyaniline, doped and gelled with 5-sulfosalicylic acid, addresses the problem of electrical connection failure in silicon-based anodes. The O═C-O-C bonds (PAA-CMC) enhance the covalent cohesion between binder molecules, preventing electrolyte swelling. The O═C-O-Si bonds enhance the covalent binding between the binder and the silicon particle interface. The covalent O═C-O-Cu bonds boost the binder-copper interface interaction, improving the interfacial stability of the entire electrode. After 1000 ultralong cycles at 1 A g-1, the nanosilicon anode with the PPC binder delivers a reversible capacity of 1130 mAh g-1. This work demonstrates a promising strategy for enhancing interfacial stability and conductivity in silicon-based anodes, offering a practical solution to improve long-term cycling performance.

