Issue 12, 2024

A mass-producible polyoxovanadate cathode for ultrafast-kinetics zinc-ion batteries

Abstract

Aqueous zinc-ion batteries (ZIBs) have emerged as a high-safety, cost-effective, and environment-benign energy storage solution for grid-scale applications, however, the lack of high-performance cathode materials that support rapid zinc ion migration and allow scalable synthesis has hindered their commercialization. In this work, we propose a low-cost and mass-producible polyoxovanadate KZnV5O14·2.5H2O (KZVO) cathode, demonstrating a high specific capacity of 275 mA h g−1 and an energy density of 201 W h kg−1. Notably, the special crystal structure is rich in large decavanadate complexes connected by weak hydron bonds and coordinated potassium/zinc ions, giving rise to criss-crossed zinc ion transportation channels and thus a relatively low hopping energy barrier (0.58 eV), comparable to that of lithium ion in LiFePO4. The intrinsic ultrafast ion-diffusion kinetics enables the achievement of an ultrahigh power density (6.8 kW kg−1 at 127 W h kg−1) and the ultrafast charging capability (70% state of charge in one minute) at an extremely high rate of 40 C (10 A g−1). Apart from the high abundance and full availability of both zinc and vanadium, the high capacity, decent cycling stability, and excellent rate capability render the study of KZVO a fresh perspective on advancing the development of cathode materials for ZIBs.

Graphical abstract: A mass-producible polyoxovanadate cathode for ultrafast-kinetics zinc-ion batteries

Supplementary files

Article information

Article type
Research Article
Submitted
30 Mar 2024
Accepted
16 May 2024
First published
17 May 2024

Inorg. Chem. Front., 2024,11, 3643-3652

A mass-producible polyoxovanadate cathode for ultrafast-kinetics zinc-ion batteries

M. Chen, C. He, Q. Liu, W. Deng and C. Sun, Inorg. Chem. Front., 2024, 11, 3643 DOI: 10.1039/D4QI00814F

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