Endogenous Functional Group Engineering Enables High‐Efficiency Hard Carbon Anodes for Sodium‐ion Batteries

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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Small
Published
2026-10-06
DOI
https://doi.org/10.1002/smll.76134
Primary Topic
Advancements in Battery Materials
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article
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article

Endogenous Functional Group Engineering Enables High‐Efficiency Hard Carbon Anodes for Sodium‐ion Batteries

Yan Qing Lu, Hui Zhu, Feixiang Wu, Wenxi Wang et al.
Small
Advancements in Battery Materials
article

Endogenous Functional Group Engineering Enables High‐Efficiency Hard Carbon Anodes for Sodium‐ion Batteries

Yan Qing Lu, Hui Zhu, Feixiang Wu, Wenxi Wang, Liu Yu, Rutong Yang, Daiyang Huang, Jian Yin, Jiao Yin, Chen Yang
article en

Abstract

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).

Small
Helmholtz Institute Jena (DE), Central South University (CN), Helmholtz-Zentrum Berlin für Materialien und Energie (DE), Xinjiang Technical Institute of Physics & Chemistry (CN), Ministry of Education (IR), Academy of Opto-Electronics (CN), University of Chinese Academy of Sciences (CN), Friedrich Schiller University Jena (DE)
Openalex Percentile: Top 22%
Advancements in Battery Materials
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