4.6 Article

Highly microporous graphite-like BCxO3-x/C nanospheres for anode materials of lithium-ion batteries

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 5, Issue 6, Pages 2835-2843

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c6ta10778h

Keywords

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Funding

  1. Shanxi Province Science Foundation for Youths [2015021082]
  2. Scientific and Technological Innovation Programs of Higher Education Institutions in Shanxi [2015062]
  3. Science Foundation of North University of China [2013096]
  4. Scientific research Start-up Funds of North University of China
  5. National Natural Science Foundation of China [U1510125, 51272301]
  6. Specialized Research Fund for Sanjin Scholars Program of Shanxi Province
  7. North University of China Fund for Distinguished Young Scholars

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In the present work, we report Li storage in a spherical graphite-like BCxO3-x/C (g-BCO/C) nanostructure with an average diameter of ca. 75 nm. Highly microporous g-BCO/C nanospheres with a BET specific surface area of 493.35 m(2) g(-1) were fabricated via a simple hydrothermal carbonization process combined with one-step annealing. The microstructure of the g-BCO/C nanospheres was characterized by means of XRD, TEM and Raman spectroscopy. XPS measurements reveal the formation of a boron solid-solution phase such as BC3 (x = 3), BC2O (x = 2) and BCO2 (x = 1), as well as the concentration of substitutional boron which is around 1.75 at.%. Further, B-11-NMR spectra confirmed the formation of BC3. Benefiting from the unique structural features and boron doping, the g-BCO/C nanospheres exhibit excellent electrochemical performances as an anode material for Li-ion batteries. A high initial reversible capacity (591 mA h g(-1), 200 mA g(-1)) and high-rate capacity (262 mA h g(-1), 1000 mA g(-1)), as well as stable capacity (446 mA h g(-1), 200 mA g(-1)) after 100 cycles are delivered. The improved Li storage performance is attributed to three merits of g-BCO/C nanospheres: the large number of edge defects induced by boron, the micropores in the material and the large spacing of the lattice fringes (d(002)) which can provide extra Li storage regions.

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