Interplay of Lattice Distortion and Cation Disorder Governs Li-Ion Transport in Cation-Disordered Rocksalt Cathodes

Abstract Cation-disordered solids provide a chemically complex landscape in which local environments, lattice responses, and configurational disorder collectively influence ion transport. In cation-disordered rocksalt cathodes, Li+ diffusion has traditionally been interpreted using the static 0-transition-metal (0-TM) percolation rule, which assumes an ideal lattice and often underestimates experimentally accessible capacities. Here, we show that lattice distortion constitutes an essential and previously overlooked chemical degree of freedom that actively reshapes the Li+ percolation networks in disordered oxides. By combining Monte Carlo sampling of cation configurations with molecular dynamics simulations accelerated by machine learning interatomic potentials, we develop a lattice-responsive framework that quantitatively predicts Li+ percolation and electrochemical capacities with deviations from experiment below 5%. Our results reveal a causal coupling between lattice distortion and cation short-range order: enhanced local distortions suppress ordering and activate Li+ migration through nominally inaccessible 1-transition-metal (1-TM) diffusion channels, thereby extending the percolation network beyond the conventional 0-TM paradigm. Guided by this insight, we design and synthesize a multication cation-disordered rocksalt cathode, Li1.2Mn0.2Ti0.2V0.2Mo0.2O2, which exhibits increased lattice distortion, an expanded Li+ percolation network, and a high reversible capacity consistent with theoretical predictions. These findings establish lattice distortion as an active chemical parameter governing ion transport in disordered solids and provide a general design principle for ion-conducting materials.

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Journal
Journal of the American Chemical Society
Published
2026-09-18
DOI
https://doi.org/10.1021/jacs.6c05378
Primary Topic
Advancements in Battery Materials
Type
article
Field-Weighted Citation Impact
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article

Interplay of Lattice Distortion and Cation Disorder Governs Li-Ion Transport in Cation-Disordered Rocksalt Cathodes

Longlong Fan, Kang Dong, Anchun Tang, Xueliang Sun et al.
Journal of the American Chemical Society
Advancements in Battery Materials
article

Interplay of Lattice Distortion and Cation Disorder Governs Li-Ion Transport in Cation-Disordered Rocksalt Cathodes

Longlong Fan, Kang Dong, Anchun Tang, Xueliang Sun, Dingguo Xia, Zichang Zhang, Jian Peng, Jiewei Cheng, Peng‐Hu Du, Qiang Sun, Shuo Wang, Weihan Li, Haoyu Wu, Chu-Liang Fu, Lihua Feng, Xintao Long
article en

Abstract

Abstract Cation-disordered solids provide a chemically complex landscape in which local environments, lattice responses, and configurational disorder collectively influence ion transport. In cation-disordered rocksalt cathodes, Li+ diffusion has traditionally been interpreted using the static 0-transition-metal (0-TM) percolation rule, which assumes an ideal lattice and often underestimates experimentally accessible capacities. Here, we show that lattice distortion constitutes an essential and previously overlooked chemical degree of freedom that actively reshapes the Li+ percolation networks in disordered oxides. By combining Monte Carlo sampling of cation configurations with molecular dynamics simulations accelerated by machine learning interatomic potentials, we develop a lattice-responsive framework that quantitatively predicts Li+ percolation and electrochemical capacities with deviations from experiment below 5%. Our results reveal a causal coupling between lattice distortion and cation short-range order: enhanced local distortions suppress ordering and activate Li+ migration through nominally inaccessible 1-transition-metal (1-TM) diffusion channels, thereby extending the percolation network beyond the conventional 0-TM paradigm. Guided by this insight, we design and synthesize a multication cation-disordered rocksalt cathode, Li1.2Mn0.2Ti0.2V0.2Mo0.2O2, which exhibits increased lattice distortion, an expanded Li+ percolation network, and a high reversible capacity consistent with theoretical predictions. These findings establish lattice distortion as an active chemical parameter governing ion transport in disordered solids and provide a general design principle for ion-conducting materials.

Journal of the American Chemical Society
King University (US), Eastern Institute of Technology (NZ), University of Wisconsin–Madison (US), Peking University (CN), Institute of High Energy Physics (AT)
National Natural Science Foundation of China, National Key Research and Development Program of China
Peace, Justice and strong institutions
Openalex Percentile: Top 20%
Advancements in Battery Materials
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