材料科学
阳极
微型多孔材料
碳纤维
化学工程
电解质
相间
纳米技术
沸石咪唑盐骨架
碳化
工作(物理)
储能
炭黑
作者
Ying Mo,Biao Zheng,Wenwen Yang,Yanqing Wu,Liren Zhang,G. Liu,Liqiang Ouyang,Hongyi Liu,Peng Gao,Jilei Liu
标识
DOI:10.1002/adsu.202501730
摘要
ABSTRACT Pitch‐derived hard carbon is regarded as a highly promising anode material for sodium‐ion batteries (SIBs) due to its low‐cost precursors and high carbon yield. However, during high‐temperature carbonization, its aromatic structures tend to become ordered and undergo graphitization, leading to interlayer contraction and limited capacity, which significantly restricts sodium storage performance. Herein, we propose a sequential dual‐phase oxidation strategy that introduces a liquid‐phase oxidation step prior to gas‐phase oxidation, which effectively improves the uniformity and the depth of pitch oxidation, thereby promoting intermolecular crosslinking. The resulting highly crosslinked network leads to expanded interlayer spacing, increased defect density, and a hierarchically developed microporous and ultramicroporous structure in the derived hard carbons. Consequently, the optimized hard carbon exhibits improved Na + transport across the solid electrolyte interphase and within the bulk carbon framework, along with accelerated charge‐transfer kinetics. As a result, it delivers a high reversible capacity of 339.91 mAh g −1 , excellent rate capability (279.89 mAh g −1 at 100 mA g −1 ), and outstanding cycling stability with 77.19% capacity retention after 180 cycles at 150 mA g −1 . This work provides an effective and scalable approach for developing low‐cost, high‐performance pitch‐derived hard carbon anodes for advanced SIBs.
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