Phase‐Stabilized Crystal Etching to Unlock An Oxygen‐Vacancy‐Rich Potassium Vanadate For Ultra‐Fast Zn Storage

Author:

Luo Dan1,Yu Huaibo1,Zeng Li1,Li Xiaolong1,He Hanna1,Zhang Chuhong1ORCID

Affiliation:

1. State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute Sichuan University Chengdu 610065 China

Abstract

AbstractDespite holding the advantages of high theoretical capacity and low cost, the practical application of layered‐structured potassium vanadates in zinc ion batteries (ZIBs) has been staggered by the sluggish ion diffusion, low intrinsic electronic conductivity, and unstable crystal structure. Herein, for the first time, a phase stabilized crystal etching strategy is proposed to innovate an oxygen‐vacancy‐rich K0.486V2O5 nanorod composite (Ov‐KVO@rGO) as a high‐performance ZIB cathode. The in situ ascorbic acid assisted crystal etching process introduces abundant oxygen‐vacancies into the K0.486V2O5 lattices, not only elaborately expanding the lattice spacing for faster ion diffusion and more active sites due to the weakened interlayer electrostatic interaction, but also enhancing the electronic conductivity by accumulating electrons around the vacancies, which is also evidenced by density functional theory calculations. Meanwhile, the encapsulating rGO layer ably stabilizes the K0.486V2O5 crystal phase otherwise is hard to endure subject to such a harsh chemical etching. As a result, the optimized Ov‐KVO@rGO electrode delivers record‐high rate capabilities with 462 and 272.39 mAh g−1 at 0.2 and 10 A g−1, respectively, outperforming all previously reported potassium vanadate cathodes and most other vanadium‐based materials. This work highlights a significant advancement of layer‐structured vanadium based‐materials towards practical application in ZIBs.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Sichuan Province

Publisher

Wiley

Subject

General Materials Science,General Chemistry

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