Disordered Rocksalts as High‐Energy and Earth‐Abundant Li‐Ion Cathodes

H Han‐Ming Hau (Department of Materials Science and Engineering University of California Berkeley Berkeley CA 94720 USA) T Tucker Holstun (Department of Materials Science and Engineering University of California Berkeley Berkeley CA 94720 USA) E Eunryeol Lee B Bernardine L. D. Rinkel (Energy Storage and Distributed Resources Division, Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Berkeley, California 94720 ,United States) T Tara P. Mishra (National Center for Electron Microscopy Molecular Foundry Lawrence Berkeley National Laboratory Berkeley CA USA) M Max Markuson DiPrince (Bredesen Center for Interdisciplinary Research and Education University of Tennessee Knoxville Knoxville TN 37996 USA) R Rohith Srinivaas Mohanakrishnan (Department of Materials Science and Engineering) E Ethan C. Self (Chemical Sciences Division Oak Ridge National Laboratory Oak Ridge TN 37830 USA) K Kristin A. Persson B Bryan D. McCloskey (Energy Storage and Distributed Resources Division) G Gerbrand Ceder

Abstract

Abstract To address the growing demand for energy and support the shift toward transportation electrification and intermittent renewable energy, there is an urgent need for low‐cost, energy‐dense electrical storage. Research on Li‐ion electrode materials has predominantly focused on ordered materials with well‐defined lithium diffusion channels, limiting cathode design to resource‐constrained Ni‐ and Co‐based oxides and lower‐energy polyanion compounds. Recently, disordered rocksalts with lithium excess (DRX) have demonstrated high capacity and energy density when lithium excess and/or local ordering allow statistical percolation of lithium sites through the structure. This cation disorder can be induced by high temperature synthesis or mechanochemical synthesis methods for a broad range of compositions. DRX oxides and oxyfluorides containing Earth‐abundant transition metals have been prepared using various synthesis routes, including solid‐state, molten‐salt, and sol‐gel reactions. This review outlines DRX design principles and explains the effect of synthesis conditions on cation disorder and short‐range cation ordering (SRO), which determines the cycling stability and rate capability. In addition, strategies to enhance Li transport and capacity retention with Mn‐rich DRX possessing partial spinel‐like ordering are discussed. Finally, the review considers the optimization of carbon and electrolyte in DRX materials and addresses key challenges and opportunities for commercializing DRX cathodes.

Article Details

Volume / Issue Vol. 37, Issue 46
Published November 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

H

Han‐Ming Hau

Department of Materials Science and Engineering University of California Berkeley Berkeley CA 94720 USA

T

Tucker Holstun

Department of Materials Science and Engineering University of California Berkeley Berkeley CA 94720 USA

E

Eunryeol Lee

B

Bernardine L. D. Rinkel

Energy Storage and Distributed Resources Division, Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Berkeley, California 94720 ,United States

T

Tara P. Mishra

National Center for Electron Microscopy Molecular Foundry Lawrence Berkeley National Laboratory Berkeley CA USA

M

Max Markuson DiPrince

Bredesen Center for Interdisciplinary Research and Education University of Tennessee Knoxville Knoxville TN 37996 USA

R

Rohith Srinivaas Mohanakrishnan

Department of Materials Science and Engineering

E

Ethan C. Self

Chemical Sciences Division Oak Ridge National Laboratory Oak Ridge TN 37830 USA

K

Kristin A. Persson

B

Bryan D. McCloskey

Energy Storage and Distributed Resources Division

G

Gerbrand Ceder