Issue 33, 2021

Zn2+-Intercalated V2O5·nH2O derived from V2CTx MXene for hyper-stable zinc-ion storage

Abstract

Aqueous zinc-ion batteries (ZIBs) are considered as desirable large-scale energy storage systems because of their environment friendliness and low cost. However, the development of ZIBs with stable performance still faces many obstacles before becoming viable for commercial applications. Herein, ZnxV2O5·nH2O nanobelts with uniform size derived from highly conductive V2CTx MXene (VC–ZVO) are designed and synthesized as cathodes for ZIBs via simultaneous ion intercalation and oxidation. Thanks to the pre-intercalated Zn2+ and the ubiquitous interfaces between ZVO and the conductive network composed of the remaining V2CTx and carbon, the charge redistribution in the active/conductive heterostructure leads to weakening of electrostatic interactions, quick zinc-ion insertion/extraction, and structural stability. Accordingly, the VC–ZVO electrode shows ultrastable cycling performance and high rate capacities for ZIBs, presenting no fading capacity at 0.1 A g−1 and 96.4% capacity retention over 8000 cycles at 10 A g−1. Further studies on the electrochemical kinetics and reaction mechanism elucidate faster Zn2+ diffusion and the high reversibility of VC–ZVO ZIBs. The revelation of the origin of the improved Zn2+-storage provides distinctive ideas for the enhancement of V-based electrodes and the development of a new type of cathode.

Graphical abstract: Zn2+-Intercalated V2O5·nH2O derived from V2CTx MXene for hyper-stable zinc-ion storage

Supplementary files

Article information

Article type
Paper
Submitted
30 Jun 2021
Accepted
29 Jul 2021
First published
30 Jul 2021

J. Mater. Chem. A, 2021,9, 17994-18005

Zn2+-Intercalated V2O5·nH2O derived from V2CTx MXene for hyper-stable zinc-ion storage

X. Zhu, W. Wang, Z. Cao, S. Gao, M. O. L. Chee, X. Zhang, P. Dong, P. M. Ajayan, M. Ye and J. Shen, J. Mater. Chem. A, 2021, 9, 17994 DOI: 10.1039/D1TA05526G

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