4.8 Article

Vapor deposition of aluminium oxide into N-rich mesoporous carbon framework as a reversible sulfur host for lithium-sulfur battery cathode

Journal

NANO RESEARCH
Volume 14, Issue 1, Pages 131-138

Publisher

TSINGHUA UNIV PRESS
DOI: 10.1007/s12274-020-3055-7

Keywords

lithium-sulfur battery; aluminium oxide; sulfur host; nitrogen-rich carbon; mesoporous structure

Funding

  1. Open Project of State Key Laboratory of High-efficiency Utilization of Coal and Green Chemical Engineering, Ningxia University [2018-13K]
  2. Fundamental Research Funds for the Central Universities

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This study presents a new hybrid sulfur host, NMC-Al2O3, which effectively suppresses the shuttle effects of lithium polysulfides in Li-S batteries, leading to enhanced electrochemical performance and cycling stability of the cathode.
Restraining the shuttle effects of lithium polysulfides is the key to improve the cycling reversibility and stability of lithium-sulfur (Li-S) batteries for which design of robust sulfur hosts has been regarded as the most effective strategy. In this work, we report a new type of hybrid sulfur host which is composed of Al(2)O(3)homogenously decorated in nitrogen-rich mesoporous carbon framework (NMC-Al2O3). The NMC-Al(2)O(3)hybrid host features a poly-dispersed spherical morphology and a mesoporous configuration with high surface area and large pore volume that can accommodate a high sulfur content up to 73.5 wt.%. As a result, the fabricated NMC-Al2O3-S cathode exhibits all-round improvements in electrochemical properties in term of capacities (1,212 mAh center dot g(-1)at 0.2 C; 755 mAh center dot g(-1)at 2 C), cycling charge-discharge reversibility (sustainably 100% efficiencies) and stability (1,000 cycles with only 0.023% capacity decay per cycle at 0.5 C). By contrast, the Al2O3-free NMC-S cathode shows both decreased capacities and rapidly descending Coulombic efficiencies during cycling. Density functional theory (DFT) calculations further reveal that the implanted Al(2)O(3)can greatly enhance the chemical adsorption and catalytic conversion for various lithium polysulfides and thereby effectively prevent the polysulfide shuttling and significantly improve the utilizability, reversibility and stability of sulfur cathode.

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