硅
锂(药物)
石墨
材料科学
离子
纳米-
纳米技术
锂离子电池的纳米结构
可扩展性
光电子学
化学
电化学
计算机科学
电极
复合材料
有机化学
物理化学
内分泌学
数据库
医学
作者
Ling Xu,Zhuohua Quan,Fei Wang,Anbang Lu,Qi Zhao,Weidong Zhang,Zhuorui Tang,Dai Dang,Quanbing Liu,Chengzhi Zhang
标识
DOI:10.1016/j.jpowsour.2025.238022
摘要
Silicon is considered a highly promising anode material due to its environmental friendliness, natural abundance, and exceptionally high theoretical capacity for lithium-ion batteries. Nonetheless, substantial volume expansion impedes the economic viability of silicon anodes. This study involves the incorporation of silicon nanoparticles into a stable expanded graphite (EG)/pitch-derived carbon structure (EGC) following a reinforcing technique applied to EG using pitch. The EGC-Si composite, featuring silicon embedded within the EGC matrix, offers a durable architecture that effectively accommodates the significant volume changes of silicon particles during cycling. Furthermore, the engineered architecture of EGC-Si enhances ion diffusion while facilitating rapid electron transport through its varied porous architectures and carbon frameworks. The EGC-Si anode demonstrates a specific capacity of 699.9 mAh g −1 at 0.1 A g −1 and retains cycle stability over 400 cycles at 1.0 A g −1 . Furthermore, the EGC-Si electrode shows only a 6.6 % volume swelling ratio after full lithiation, which attribute to the well-designed ECG structure. This robust and well-integrated silicon/graphite structure offers a promising strategy to fully harness the potential of Si/Carbon composite anodes for high-performance lithium-ion storage. Silicon nanoparticles (SiNPs) were embedded in stable expanded graphite (EG)/pitch-derived carbon (PC) structure (EGC) for high-energy, low-expansion lithium-ion batteries in this study. The composite (EGC-Si) provided a robust skeleton to withstand the stress/strain from huge volume expansion of SiNPs while storage. After full lithiation, the EGC-Si electrode only shows a 6.6 % volume swelling ration attributed to the well-designed structure. • Silicon was embedded in expanded graphite layers after a reinforcement process. • An extremely small silicon/graphite electrode volume swelling ratio of 6.6 %. • Designed structure to withstand the stress of volume expansion for cycle stability.
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