4.7 Article

Ag nanoparticles promoted LiFePO4F nanospheres cathode with superior cycling stability for lithium-ion batteries

Journal

JOURNAL OF ALLOYS AND COMPOUNDS
Volume 751, Issue -, Pages 12-19

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2018.04.075

Keywords

Lithium-ion batteries; Cathode materials; LiFePO4F nanospheres; Ag decoration; Electrochemical performance

Funding

  1. National Natural Science Foundation of China [51502256]
  2. Hunan Provincial Natural Scientific Foundation of China [14JJ6010, 2017JJ3297]
  3. China Postdoctoral Science Foundation [2014M552142, 2015M570682]
  4. Hunan Provincial Education Office Foundation of China [17C1523, 16C1534]
  5. Scientific Research Fund of Xiangtan University [2015SEP03, 13QDZ30, 2014XZX07]

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Tavorite-like structure LiFePO4F has been recently studied as potential alternative cathode materials for lithium-ion batteries due to its outstanding structural stability, abundant resources and remarkable safety. However, its poor electronic conductivity and lithium-ion diffusion coefficient leads to the unsatisfactory cycling stability and rate capabilities of LiFePO4F. Herein, Ag decorated LiFePO4F nanospheres have been synthesized for the first time via a precipitation method with in-situ reduction of Ag+, simultaneously improving electronic conductivity and lithium-ion diffusion coefficient. The Ag nanoparticles with size of -10 nm are in-situ grown on the surface of LiFePO4F nanospheres with impressive electrochemical performance. It delivers a high discharge capacity of 148.7 mAh g(-1) (very close to the theoretical capacity of 152 mAh g(-1)) at 0.1 C. It is worth mentioning that the Ag-decorated LiFePO4F nanospheres reveal superior cycling stability. The initial discharge capacities of Ag-decorated LiFePO4F reaches up to 120.3 mAh.g(-1) at 0.5 C, and the capacity retention is as high as 96.1% after 300 cycles, which is remarkable higher than that of pure LiFePO4F nanospheres with initial discharge capacity of 110.2 mAh.g(-1) and capacity retention of 83.1% after 300 cycles. Furthermore, the Ag-decorated LiFePO4F displays the average discharge potential loss of only 0.7% which is lower than pure LiFePO4F of 4.7% after 300 cycles, and the corresponding specific energy retention ratio of 95.5% which is higher than that of 80.1%. (C) 2018 Elsevier B.V. All rights reserved.

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