微观结构
电池(电)
碳纤维
钠
材料科学
离子
钠离子电池
化学工程
淀粉
化学
复合材料
冶金
工程类
热力学
有机化学
物理
物理化学
电解质
复合数
法拉第效率
功率(物理)
电极
作者
Junfeng Zhao,Xun Liu,Haoxiang Yuan,Shuai Feng,Kaiyang Xiong,Xiaomei Xu,Yuhong Li,Gang Yang
标识
DOI:10.1016/j.jpowsour.2025.237367
摘要
Although starch-based hard carbons serve as the practical anodes for sodium-ion batteries, the formation mechanism of the microstructure influenced by the main components is still unclear. Here, the cassava starch with different amylose contents is employed to systematically establish the microstructure evolution mechanism of hard carbon and their effects on sodium storage performance. The results indicate that the regulation of starch components is crucial to achieving a short-range-ordered and a long-range-disordered structure with more active site during the pyrolysis process . The optimized 50SE-HC sample delivers a high reversible capacity of 316.83 mAh g −1 at 0.1C and stable cycling performances with 176.86 mAh g −1 after 1000 cycles at 4C. Deep insights into the microstructure evolution mechanism will greatly promote the rational design of starch-derived hard carbon anode with high performance. • Hard carbons (HCs) were developed using starch with different amylose contents. • The microstructure of HCs can be modulated by changing amylose contents. • The optimized 50SE-HC sample exhibits a record high Na + storage performance. • The work provides new insights for designing starch-derived hard carbon anode.
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