Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7725124 | Journal of Power Sources | 2018 | 7 Pages |
Abstract
A layered potassium vanadate K0.23V2O5 has been successfully prepared by the hydrothermal method and evaluated as an anode material for lithium-ion and potassium-ion batteries. High structural stability is demonstrated by the ex situ X-ray diffraction (XRD) and ex situ scanning electron microscopy (SEM). When used as an anode material for lithium-ion batteries, the K0.23V2O5 exhibits a reversible capacity of 480.4â¯mAh gâ1 at 20â¯mAâ¯gâ1 after 100 cycles and 439.7â¯mAh gâ1 at 200â¯mAâ¯gâ1 after 300 cycles as well as good cycling stability. Even at a high current density of 800â¯mAâ¯gâ1, a high reversible capacity of 202.5â¯mAh gâ1 can be retained, indicating excellent rate performance. Whereas in potassium-ion batteries, it retains a capacity of 121.6â¯mAh gâ1 after 150 cycles at 20â¯mAâ¯gâ1 and 97.6â¯mAh gâ1 at 100â¯mAâ¯gâ1 after 100 cycles. Such superior electrochemical performance of K0.23V2O5 can be ascribed to the special flower-like morphology and structure. Overall, the results highlight the great potential of K0.23V2O5 as an anode material for both lithium-ion and potassium-ion batteries.
Related Topics
Physical Sciences and Engineering
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Authors
Cailing Liu, Shaohua Luo, Hongbo Huang, Zhiyuan Wang, Qing Wang, Yahui Zhang, Yanguo Liu, Yuchun Zhai, Zhaowen Wang,