4.8 Article

Sn stabilized pyrovanadate structure rearrangement for zinc ion battery

期刊

NANO ENERGY
卷 81, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.nanoen.2020.105584

关键词

Structural rearrangements; Pyrovanadate; Sn stabilization; Zinc intercalation/Deintercalation; Zinc-ion battery

资金

  1. National Natural Science Foundation of China [21905305, 21905169, 51874196, 51674164]
  2. LaSPACE
  3. LSU graduate school
  4. Shanghai Pujiang Program [2019PJD015]
  5. Shanghai Shuguang Program
  6. Iron and Steel Joint Research Fund of National Natural Science Foundation
  7. China Baowu Steel Group Corp. Ltd [U1860203]

向作者/读者索取更多资源

This study developed an advanced cathode material Sn1.5V2O7(OH)(2)center dot 3.3H(2)O for ZIBs, showing excellent cycling life and rate capability. The tetravalent tin ions were found to have a strong beneficial effect on the battery performance of layered-structure cathode materials, indicating potential for further research in multi-valent rechargeable batteries.
Rechargeable zinc-ion batteries (ZIBs) have shown great potential for grids-level energy storage system. However, the lack of desirable and stable cathode materials remains challenging. Herein, Sn1.5V2O7(OH)(2)center dot 3.3H(2)O, in which pyrovanadate V2O74- group pillared with Sn oxide layer, is developed as an advanced cathode for ZIBs and a hidden reaction mechanism in SnVO cathode through in-situ Raman and ex-situ XANEs, involves the opening of V-O edge bonding and formation of Sn-O-V bonding, which leads to charge screening effect and facilitates the fast diffusion kinetics for zinc ions, as quantitatively verified by kinetic analysis. Additionally, the tetravalent Sn ions bring about stronger ionic bonds, binding to pyrovanadate V2O74- group and leading to good stability in the pyrovanadate framework, which guarantee the cycling stability. As a result, the as-prepared SnVO shows long cycling life as well as excellent rate capability. We demonstrate that, even cycled at high current of 10 A/g, the SnVO cathode can still retain a capacity of 130 mAh/g for over 500 cycles, indicating remarkable high capacity at high rate. Our findings reveal that the tetravalent tin ions have a strong beneficial effect on the battery performance of the layered-structure cathode materials. It is believed that our study would boost further studies in other multi-valent rechargeable batteries.

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