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Revisiting irreversible capacity in lignin-derived hard carbons for sodium-ion batteries: The dominant role of surface functional groups over surface area
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Revisiting irreversible capacity in lignin-derived hard carbons for sodium-ion batteries: The dominant role of surface functional groups over surface area

Marion Bermont, Carine Davoisne, François Rabuel, Christine Surcin, Raphaël Janot et Da Huo
Journal of Power Sources, Vol.672
04/2026

Résumé

ICE XPS Surface modification Composite Hard carbon
Hard carbons are promising materials as anode for sodium-ion batteries due to their good reversible capacities and the huge diversity of bio-based precursors available for their synthesis. Nevertheless, their low initial coulombic efficiency (ICE), often below 80% for bio-based hard carbons, is one of the main challenges for their commercial applications. In this work, the surface of lignin-based hard carbons is modified with a thin layer of soft carbon obtained from petroleum pitch. Soft carbon is known to have rich sp2-hybridized domains, with very few heteroatoms, leading to a surface with less defects. After pyrolysis at different temperatures (900 °C to 1400 °C), hard carbon materials were coated using an impregnation coating method. Structural, textural and surface analyses were carried out to understand the impact of soft carbon coating on the electrochemical performance. The composite carbon initially pyrolyzed at 1200 °C exhibited the best performance, achieving a reversible capacity of 310 mAh.g−1, and an excellent initial coulombic efficiency of 89%. Notably, this ICE is among the highest reported for lignin-based hard carbons, which highlights the effectiveness of surface engineering in enhancing their electrochemical properties for sodium-ion batteries.

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