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Biomass-Derived Carbon Paper to Sandwich Magnetite Anode for Long-Life Li-Ion Battery

  • Tian Gao
  • , Chenyang Xu
  • , Ruiqing Li
  • , Ran Zhang
  • , Baolu Wang
  • , Xiangfen Jiang*
  • , Ming Hu
  • , Yoshio Bando
  • , Desheng Kong
  • , Pengcheng Dai
  • , Xue Bin Wang
  • *此作品的通讯作者
  • Nanjing University
  • National Institute for Materials Science Tsukuba
  • City University of Hong Kong
  • East China Normal University
  • University of Wollongong
  • Tianjin University
  • China University of Petroleum (East China)

科研成果: 期刊稿件文章同行评审

摘要

Metal oxides can deliver high capacity to Li-ion batteries, surpassing conventional graphite, but they suffer from a huge volume change during charging-discharging and poor cycle life. Herein, we merge the dual strategies of 3D-network support and sandwiching design to tackle such issue. We develop a skillful O2-NH3 reactive pyrolysis of cellulose, where the preoxidation and the aminolysis result in the spatially separated charring of cellulose chains. A cellulose fiber is wonderfully converted into several ultrathin twisted graphenic sheets instead of a dense carbon fiber, and consequently, a cellulose paper is directly transformed into a porous flexible carbon paper with high surface area and conductivity (denoted as CP). CP is further fabricated as a 3D-network support into the hybrid CP@Fe3O4@RGO, where RGO is reduced graphene oxide added for sandwiching Fe3O4 particles. As a binder-free free-standing anode, CP@Fe3O4@RGO effectively fastens Fe3O4 and buffers the volume changes on cycling, which stabilizes the passivating layer and lifts the Coulombic efficiency. The anode thus presents an ultralong cycle life of >2000 running at a high capacity level of 1160 mAh g-1. It additionally facilitates electron and ion transports, boosting the rate capability. CP and CP@Fe3O4@RGO represent a technological leap underpinning next-generation long-life high-capacity high-power batteries.

源语言英语
页(从-至)11901-11911
页数11
期刊ACS Nano
13
10
DOI
出版状态已出版 - 22 10月 2019
已对外发布

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