碳纤维
法拉第效率
阳极
材料科学
相间
纳米技术
功能群
分子工程
化学工程
微观结构
储能
工作(物理)
碳捕获和储存(时间表)
表面工程
密度泛函理论
作者
Liu Yu,Jian Yin,Jian Yin,Rutong Yang,Chen Yang,Daiyang Huang,Yan Qing Lu,Feixiang Wu,Wenxi Wang,Hui Zhu,Jiao Yin,Jiao Yin
出处
期刊:Small
[Wiley]
日期:2026-10-06
卷期号:: e76134-e76134
摘要
ABSTRACT Hard carbon is a leading anode for sodium‐ion batteries, but its widespread use is still prevented from low initial Coulombic efficiency (ICE) and unstable electrode‐electrolyte interfaces. In this work, we show that engineering endogenous functional groups can directly encode solid‐electrolyte interphase (SEI) chemistry and sodium storage performance of hard carbon through molecular design of the carbon precursors. The introduction of distinct functional groups (‐COOH, ‐CHO, and ‐OH) into the precursor affords systematic control over the microstructure and surface groups (C═O, C─O, and O─C═O) of the hard carbon. For example, hard carbon incorporating ‐COOH groups promotes the formation of a thin NaF‐rich SEI inner layer, whereas that with ‐OH groups yields a thick organic SEI layer. The optimally engineered interface enables outstanding performance in hard carbon anodes, delivering an 87.9% ICE with a reversible capacity of 353 mAh g −1 at 20 mA g −1 and a 95.7% capacity retention rate after 200 cycles at 50 mA g −1 . This work highlights a molecular strategy to elaborately direct interfacial chemistry, providing a generalizable principle for integrating precursor engineering with interphase control in next‐generation sodium‐ion batteries (SIBs).
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