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◆ Nanoscale horizons2026-09-01

Polymer-derived bifunctional anchoring coatings for mechanically resilient Si-based nanocomposite anodes.

Yanzhe Yang, Weiang Yin, Jing Wang, Zhiguang Zhao, Hui Hu, Yifan Ding, Jingze Guo, Zhao Lv, Yufeng Luo, Guoqiang Tan

原始摘要(英文原文)· Original abstract
Enhancing electrical conductivity and structural stability of Si-based anodes is crucial to attaining efficient and stable capacity output, promoting their practical applications. Here, we developed a polymer-derived bifunctional coating of nano-Si, which simultaneously provides conductive networks and elastic encapsulation to facilitate electron/ion transport and accommodate Si volume expansion during repeated lithiation/delithiation. A covalent bonding SiOC coating was firstly build onto nano-Si by ball-milling micro-Si with polyvinyl alcohol (PVA), then a cyclized-polyacrylonitrile (cPAN) coating was wrapped onto the above composite through low-temperature pyrolysis of PAN, forming polymer-derived anchoring coatings of nano-Si. The covalent SiOC anchoring layer serves as a bridge for fast electrical conduction and efficient stress buffer, and the cyclized-PAN conformal coating further improves electrical conductivity and mechanical resilience of the whole nanostructure. The as-prepared nanocomposite exhibits excellent electrical and mechanical properties, enabling outstanding electrochemical performance in Li-ion batteries. It exhibits a high initial capacity of 3477 mAh g-1 and retains 1660 mAh g-1 after 300 cycles at 1 A g-1. The graphite-Si/SiOC@cPAN//NCM811 full-cell exhibited a high initial capacity of 180.6 mAh g-1 and 89% capacity retention after 300 cycles at 1C. This work provides a facile and scalable way to fabricate high-performance Si-based anode materials for high-energy-density Li-ion batteries.
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Polymer-derived bifunctional anchoring coatings for mechanically resilient Si-based nanocomposite anodes. — 科研速览 Science Skim