Issue 45, 2021

Zero-strain Ca0.4Ce0.6VO4 anode material for high capacity and long-life Na-ion batteries

Abstract

Sodium-ion batteries (SIBs) have attracted widespread attention for grid-scale energy storage owing to the natural abundance of sodium, low cost and environmental friendliness. Generally, the electrochemical performances of SIBs are largely determined by the electrode materials. However, the development of electrode materials with long-term stability and large capacity remains a great challenge. Here, we exploited a tetragonal-type Ca–Ce–V–O compound (Ca–CeVO4) with a robust framework for stable Na+ storage, which exhibits exceptional cycling stability (ca. 97.8% capacity retention for 2000 cycles) and a reversible capacity of about 170 mA h g−1 with a safe average storage potential of ∼0.73 V (vs. Na+/Na). The crystal structure of Ca–CeVO4 contains large-sized quadrilateral channels (∼3.6 Å), which provide a larger number of vacancies for Na+ insertion, thus resulting in a large theoretical capacity. The tiny unit-cell volume change (0.53%) of Ca–CeVO4 in the sodiation/desodiation process can effectively release the mechanical stress induced by Na+ insertion/deinsertion, which is responsible for the excellent long-term cycle life of Ca–CeVO4. This work will make a contribution to the future design of stable electrode materials for long-life SIBs.

Graphical abstract: Zero-strain Ca0.4Ce0.6VO4 anode material for high capacity and long-life Na-ion batteries

Supplementary files

Article information

Article type
Paper
Submitted
12 Aug 2021
Accepted
12 Oct 2021
First published
22 Oct 2021

J. Mater. Chem. A, 2021,9, 25663-25671

Zero-strain Ca0.4Ce0.6VO4 anode material for high capacity and long-life Na-ion batteries

G. Liang, X. Xiong, L. Yang, X. Liu and R. Che, J. Mater. Chem. A, 2021, 9, 25663 DOI: 10.1039/D1TA06877F

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