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Inorganic-organic competitive coating strategy derived uniform hollow gradient-structured ferroferric oxide-carbon nanospheres for ultra-fast and long-term lithium-ion battery

Author

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  • Yuan Xia

    (Fudan University)

  • Tiancong Zhao

    (Fudan University)

  • Xiaohang Zhu

    (Fudan University)

  • Yujuan Zhao

    (Fudan University)

  • Haili He

    (Fudan University)

  • Chin-te Hung

    (Fudan University)

  • Xingmiao Zhang

    (Fudan University)

  • Yan Chen

    (Fudan University)

  • Xinlei Tang

    (Fudan University)

  • Jinxiu Wang

    (Fudan University)

  • Wei Li

    (Fudan University)

  • Dongyuan Zhao

    (Fudan University)

Abstract

The gradient-structure is ideal nanostructure for conversion-type anodes with drastic volume change. Here, we demonstrate an inorganic-organic competitive coating strategy for constructing gradient-structured ferroferric oxide-carbon nanospheres, in which the deposition of ferroferric oxide nanoparticles and polymerization of carbonaceous species are competitive and well controlled by the reaction thermodynamics. The synthesized gradient-structure with a uniform size of ~420 nm consists of the ferroferric oxide nanoparticles (4–8 nm) in carbon matrix, which are aggregated into the inner layer (~15 nm) with high-to-low component distribution from inside to out, and an amorphous carbon layer (~20 nm). As an anode material, the volume change of the gradient-structured ferroferric oxide-carbon nanospheres can be limited to ~22% with ~7% radial expansion, thus resulting in stable reversible specific capacities of ~750 mAh g−1 after ultra-long cycling of 10,000 cycles under ultra-fast rate of 10 A g−1. This unique inorganic-organic competitive coating strategy bring inspiration for nanostructure design of functional materials in energy storage.

Suggested Citation

  • Yuan Xia & Tiancong Zhao & Xiaohang Zhu & Yujuan Zhao & Haili He & Chin-te Hung & Xingmiao Zhang & Yan Chen & Xinlei Tang & Jinxiu Wang & Wei Li & Dongyuan Zhao, 2021. "Inorganic-organic competitive coating strategy derived uniform hollow gradient-structured ferroferric oxide-carbon nanospheres for ultra-fast and long-term lithium-ion battery," Nature Communications, Nature, vol. 12(1), pages 1-10, December.
  • Handle: RePEc:nat:natcom:v:12:y:2021:i:1:d:10.1038_s41467-021-23150-8
    DOI: 10.1038/s41467-021-23150-8
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