插层(化学)
锂(药物)
透射电子显微镜
纳米结构
石墨
材料科学
化学物理
离子
纳米技术
纳米尺度
结晶学
化学
无机化学
复合材料
医学
有机化学
内分泌学
作者
Suting Weng,Siyuan Wu,Zepeng Liu,Gaojing Yang,Xiaozhi Liu,Xiao Zhang,Chu Zhang,Qiuyan Liu,Yao Huang,Yejing Li,Mehmet Nurullah Ateş,Dong Su,Lin Gu,Hong Li,Liquan Chen,Ruijuan Xiao,Zhaoxiang Wang,Xuefeng Wang
摘要
Abstract Intercalation provides to the host materials a means for controlled variation of many physical/chemical properties and dominates the reactions in metal‐ion batteries. Of particular interest is the graphite intercalation compounds with intriguing staging structures, which however are still unclear, especially in their nanostructure and dynamic transition mechanism. Herein, the nature of the staging structure and evolution of the lithium (Li)‐intercalated graphite was revealed by cryogenic‐transmission electron microscopy and other methods at the nanoscale. The intercalated Li‐ions distribute unevenly, generating local stress and dislocations in the graphitic structure. Each staging compound is found macroscopically ordered but microscopically inhomogeneous, exhibiting a localized‐domains structural model. Our findings uncover the correlation between the long‐range ordered structure and short‐range domains, refresh the insights on the staging structure and transition of Li‐intercalated/deintercalated graphite, and provide effective ways to enhance the reaction kinetic in rechargeable batteries by defect engineering.
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