Unlocking Zn‐Ion Diffusion in Disordered Rocksalt Cathodes for Nonaqueous Zn‐Ion Batteries
Abstract
ABSTRACT Multivalent batteries, particularly zinc‐ion batteries (ZIBs), are promising candidates for high‐energy–density energy storage. However, their development is hindered by a scarcity of suitable cathode materials capable of the reversible (de)intercalation of Zn 2+ . To address this challenge, we propose cation‐disordered rocksalt (DRX) cathodes, which have demonstrated excellent performance in Li‐ion batteries, as a versatile host framework for nonaqueous ZIBs. Specifically, a vacancy‐containing Mn 0.4 Ti 0.4 O 2 DRX cathode demonstrates a reversible capacity of 170 mAh g −1 in nonaqueous ZIBs. Our investigation reveals that the Zn 2+ ionic diffusion mechanism within the DRX framework is intrinsically sluggish compared to monovalent ions like Li + due to strong electrostatic repulsion. Therefore, to successfully unlock Zn 2+ migration, we show that it is necessary to introduce cation vacancies into the host, which significantly reduces the ion migration barrier. Additionally, we suggest that anion engineering may further enhance diffusion kinetics. This work expands the cathode material landscape for ZIBs and provides general insights into the design of disordered hosts for multivalent ion storage.
Article Details
Authors (11)
Zixuan Li
Department of Physics
Rui Qi
Photon Science Research Center for Carbon Dioxide, Shanghai Advanced Research Institute
Yee Chit Wong
Department of Physics University of Warwick Coventry UK
Longlong Wang
Jun Chen
Yi Yuan
Interdisciplinary Research Center on Biology and Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences, 100 Haike Rd., Shanghai 201210, China
Reinhard J. Maurer
Department of Chemistry, University of Warwick 2 , Coventry CV4 7AL,
Robert A. House
Nicholas D. M. Hine
Department of Physics, University of Warwick 1 , Gibbet Hill Road, Coventry CV4 7AL,
Peter G. Bruce
Department of Materials University of Oxford Oxford UK
Alex W. Robertson