阳极
材料科学
氟
硅
化学工程
多孔性
肿胀 的
电化学
阴极
电极
氧化物
涂层
热氧化
碳纤维
扩散
多孔硅
热处理
碳纳米管
纳米技术
图层(电子)
多孔介质
纳米颗粒
氧化硅
氧化还原
无机化学
作者
Seongjae Myeong,Seoyeong Cheon,Sangyeop Lee,Chaehun Lim,Seongmin Ha,Yunhua Yu,Xiaoping Yang,Young‐Seak Lee
出处
期刊:Small
[Wiley]
日期:2026-09-23
卷期号:: e75779-e75779
摘要
ABSTRACT Silicon oxide (SiO x ) anodes exhibit low electronic conductivity, large volume changes, and unstable interphases. Herein, we report fluorination engineering, which induces coupled structural and chemical transformations in commercial SiO x . The etching‐induced fluorination of commercial SiO x via NF 3 treatment generates porous silicon oxyfluoride (pSiO x F y ), which is followed by thermal defluorination during carbon nanotube (CNT) in‐pore growth to form pSiO x F y ‐CNT. This defluorination lowers the silicon oxidation state, induces recrystallization, and retains fluorine for the formation of a LiF‑rich solid‑electrolyte interphase, thereby enhancing the electrochemical performance. The resulting embedded CNT network provides fast electronic pathways and mechanical buffering, with the porous framework shortening the Li‐ion diffusion distance. Consequently, the optimized pSiO x F y ‐CNT delivers an enhanced capacity of 1525 mAh g −1 . It also retains 731 mAh g −1 after 500 cycles at 1 A g −1 while limiting the electrode swelling to 38%, compared with 116% for SiO x . The fluorination duration serves as a practical control parameter, with 20 min balancing porosity generation and active Si retention. Moreover, full‐cell tests using LiFePO 4 cathodes confirm that the designed anodes can operate in a coin‐cell configuration. Overall, this work suggests a new design for SiO x anodes that goes beyond conventional strategies relying on carbon coating or fluorine doping.
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