材料科学
阳极
重量分析
硅
大孔隙
锂(药物)
体积热力学
锂离子电池
电池(电)
石墨
化学工程
肿胀 的
复合材料
光电子学
功率(物理)
电极
有机化学
催化作用
工程类
物理化学
化学
物理
内分泌学
量子力学
医学
介孔材料
生物化学
作者
Jiyoung Ma,Jaekyung Sung,Yoon‐Kwang Lee,Yeonguk Son,Sujong Chae,Namhyung Kim,Seong‐Hyeon Choi,Jaephil Cho
标识
DOI:10.1002/aenm.201903400
摘要
Abstract To be a thinner and more lightweight lithium‐ion battery with high energy density, the next‐generation anode with high gravimetric and volumetric capacity is a prerequisite. In this regard, utilizing high silicon (3579 mAh g −1 ) content in the electrode for the anode has been highlighted as a practically relevant approach. However, there still remains a crucial issue related to intrinsic volume expansion (>300%) of silicon upon lithiation, which can directly affect severe electrode swelling as well as accelerate its capacity fading by triggering structural degradation and electrical contact loss between particles. Herein, macropore‐exploited design, which can accommodate the volume change of high silicon content within the extended pore of graphite upon repeated cycling, is introduced. Such unique macropore‐exploited design leads to much less electrode swelling, by preserving its morphological integrity and contact between particles, than that of the comparative group with different sized pore and silicon distribution. As a result, this anode (914 mAh g −1 ) demonstrates notable gravimetric (220 Wh kg −1 at 6000 W kg −1 ) and volumetric energy density (623 Wh L −1 upon full lithiation after 100 cycles), exceeding that of a nano‐silicon blended graphite anode (127 Wh kg −1 and 229 Wh L −1 ) in the full‐cell system.
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