材料科学
对偶(语法数字)
阳极
热解炭
成核
结晶度
碳纤维
电化学
纳米技术
硅
结构稳定性
热解
化学工程
光电子学
复合材料
热力学
物理化学
结构工程
工程类
复合数
电极
文学类
化学
艺术
物理
作者
Jiapeng Zhang,Renlu Yuan,Dengke Wang,Jiangchuan Li,Xue Yao,Lixin Chen,Xiaotian Li,Zhijie Jiang,Haiyan Liu,Yu Hou,Ang Li,Xiaohong Chen,Zhiwen Chen,Chandra Veer Singh,Huaihe Song
标识
DOI:10.1002/adfm.202423700
摘要
Abstract Silicon‐carbon composites (Si/C) with multistage structures enable structural integrity during cycling. However, the lack of controllable structure preparation on a large scale hinders the stability improvement in practical applications. Herein, a new strategy is proposed to synthesize kilogram‐scale Si/C (PySi/C) featuring a dual‐model carbon structure in one step. The controllable combination of an onion‐like carbon coating on the Si surface with independent pyrolytic carbon is accomplished through the precise adjustment of the pyrolysis temperature. The dual‐model carbon formation mechanism is unraveled, detailing the cooperative coupling of the nucleation laws of carbon compositions as well as the changes trends in morphology and crystallinity. This density functional theory and finite element analysis highlight the dual‐model structure's essential contribution to the electrochemical behavior and structural stability. As expected, PySi/Cs anodes deliver stable cycling performance with retention of 91.5% after 800 cycles at 2 A g −1 . Its comprehensive electrochemical performance surpasses that of the state‐of‐the‐art kilogram‐scale Si‐based anode reported. Moreover, the assembled pouch cell exhibits actual competitiveness, showing a capacity of 1.97 Ah and a retention of 88.9% after 300 cycles at 1 C. This work provides valuable design concepts to further advance the development of Si/C anodes.
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