硅
阳极
石墨
材料科学
电极
串扰
电化学
纳米技术
降级(电信)
复合材料
光电子学
化学
电子工程
工程类
物理化学
作者
Junhyuk Moon,Heung Chan Lee,Heechul Jung,Shinya Wakita,Sungnim Cho,Jaegu Yoon,Joowook Lee,Atsushi Ueda,Bokkyu Choi,Sihyung Lee,Kimihiko Ito,Yoshimi Kubo,Alan Christian Lim,Jeong Gil Seo,Jungho Yoo,Seungyeon Lee,Yongnam Ham,WoonJoong Baek,Young-Gyoon Ryu,In Taek Han
标识
DOI:10.1038/s41467-021-22662-7
摘要
Abstract Durability of high-energy throughput batteries is a prerequisite for electric vehicles to penetrate the market. Despite remarkable progresses in silicon anodes with high energy densities, rapid capacity fading of full cells with silicon–graphite anodes limits their use. In this work, we unveil degradation mechanisms such as Li + crosstalk between silicon and graphite, consequent Li + accumulation in silicon, and capacity depression of graphite due to silicon expansion. The active material properties, i.e. silicon particle size and graphite hardness, are then modified based on these results to reduce Li + accumulation in silicon and the subsequent degradation of the active materials in the anode. Finally, the cycling performance is tailored by designing electrodes to regulate Li + crosstalk. The resultant full cell with an areal capacity of 6 mAh cm −2 has a cycle life of >750 cycles the volumetric energy density of 800 Wh L −1 in a commercial cell format.
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