法拉第效率
材料科学
碳纤维
阳极
纤维素
电池(电)
半纤维素
木质素
化学工程
储能
电化学
生物量(生态学)
有机自由基电池
纳米技术
原材料
钠离子电池
可再生能源
水解
木质纤维素生物量
制浆造纸工业
热解
工作(物理)
工艺工程
可持续能源
生物炼制
生物燃料
碳骨架
作者
Xian Li,Linguo Chen,Guangjin Wang,Xiong Lu,Ning Dang,Wei Tang,Tianbao Zhao
标识
DOI:10.1021/acssuschemeng.6c02601
摘要
Hard carbon (HC) from lignocellulosic biomass is a promising candidate for sodium-ion batteries (SIBs) anodes, but its sodium-storage performance is severely limited by the imprecise regulation of pore architecture. Herein, a green and scalable strategy was developed to tailor the closed-pore structure of bamboo-derived HC by mild p -toluenesulfonic acid ( p -TSA) pretreatment. This environmentally benign organic acid selectively hydrolyzes hemicellulose and dissolves lignin while preserving the crystalline cellulose skeleton for optimized Na + storage. Systematic characterization and electrochemical tests revealed that the moderately treated PTSC-5% formed an optimized closed-pore structure and expanded carbon interlayer spacing, delivering an initial discharge capacity of 399.63 mAh g –1 (244.8 mAh g –1 from plateau capacity) at 0.1C, an initial Coulombic efficiency (ICE) of 83.08%, and ∼84% capacity retention after 100 cycles. This work provides a cost-effective, sustainable, and industrially scalable route for the pore regulation of biomass-derived HC, clarifies the structure-performance relationship of closed-pore engineered HC for sodium storage, and advances the practical application of high-performance SIBs in sustainable large-scale energy storage systems.
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