Max Planck Institute for Solid State Research, Heisenbergstrasse 1, 70569, Stuttgart, Germany.
Key Laboratory of Materials for Energy Conversion, Chinese Academy of Sciences, Department of Materials Science and Engineering, University of Science and Technology of China, Hefei, Anhui, 230026, China.
Adv Mater. 2017 Jun;29(21). doi: 10.1002/adma.201605650. Epub 2017 Mar 15.
To address the challenge of huge volume change and unstable solid electrolyte interface (SEI) of silicon in cycles, causing severe pulverization, this paper proposes a "double-shell" concept. This concept is designed to perform dual functions on encapsulating volume change of silicon and stabilizing SEI layer in cycles using double carbon shells. Double carbon shells coated Si nanoparticles (DCS-Si) are prepared. Inner carbon shell provides finite inner voids to allow large volume changes of Si nanoparticles inside of inner carbon shell, while static outer shell facilitates the formation of stable SEI. Most importantly, intershell spaces are preserved to buffer volume changes and alleviate mechanical stress from inner carbon shell. DCS-Si electrodes display a high rechargeable specific capacity of 1802 mAh g at a current rate of 0.2 C, superior rate capability and good cycling performance up to 1000 cycles. A full cell of DCS-Si//LiNi Co Mn O exhibits an average discharge voltage of 4.2 V, a high energy density of 473.6 Wh kg , and good cycling performance. Such double-shell concept can be applied to synthesize other electrode materials with large volume changes in cycles by simultaneously enhancing electronic conductivity and controlling SEI growth.
为了解决硅在循环过程中体积变化大和固体电解质界面(SEI)不稳定的问题,导致严重的粉化,本文提出了一种“双壳”概念。该概念旨在通过双层碳壳对硅的体积变化进行封装,并在循环过程中稳定 SEI 层,起到双重作用。制备了双层碳壳包覆硅纳米颗粒(DCS-Si)。内碳壳提供有限的内部空隙,允许内碳壳内硅纳米颗粒的大体积变化,而静态外壳有利于形成稳定的 SEI。最重要的是,保留了壳间空间以缓冲体积变化并减轻来自内碳壳的机械应力。DCS-Si 电极在 0.2 C 的电流速率下显示出 1802 mAh g 的高可再充电比容量、优异的倍率性能和高达 1000 次循环的良好循环性能。DCS-Si//LiNi Co Mn O 的全电池具有平均放电电压为 4.2 V、高能量密度为 473.6 Wh kg 和良好的循环性能。这种双壳概念可以通过同时提高电子导电性和控制 SEI 生长来应用于合成其他在循环过程中具有大体积变化的电极材料。