Reactive oxygen species in layered oxide cathodes: origins, interfacial cascade degradation, and stabilization strategies

Layered transition-metal oxides are key cathodes for high-energy lithium-ion and sodium-ion batteries, yet high-voltage operation often destabilizes lattice oxygen. Deep alkali-metal extraction reconstructs the transition-metal–oxygen (TM–O) electronic structure and increases O 2p participation in charge compensation, promoting oxygen-hole localization, O O coupling, and oxygen-vacancy formation. These processes can lead to the generation and release of reactive oxygen species (ROS). Together, lattice oxygen instability and ROS evolution couple bulk structural degradation with interfacial reactions, accelerating phase transitions, near-surface reconstruction, particle cracking, electrolyte decomposition, gas evolution, transition-metal dissolution, and cathode/electrolyte interphase degradation. This review summarizes the thermodynamic basis, generation pathways, and bulk-to-interface evolution of ROS in layered oxide cathodes, together with key methods for probing lattice oxygen-ROS evolution. Three representative drivers of oxygen instability are emphasized: high-valence TM–O electronic-structure reconstruction in Ni-rich layered oxides, local Li O Li configurations in Li-rich layered oxides, and desodiation-induced stacking strain in layered sodium oxides. Stabilization strategies based on bulk compositional regulation, ordered-structure design, surface coating, and electrolyte engineering are then discussed. Finally, challenges in identifying oxygen-related species and coordinating bulk, surface, and interfacial stabilization are outlined, providing guidance for designing high-energy layered cathodes with improved durability and safety.

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Publication Details

Journal
Coordination Chemistry Reviews
Published
2026-09-12
DOI
https://doi.org/10.1016/j.ccr.2026.218532
Primary Topic
Advanced oxidation water treatment
Type
article
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article

Reactive oxygen species in layered oxide cathodes: origins, interfacial cascade degradation, and stabilization strategies

Xinyu Hu, Guoqiang Zou, Chuanyong Niu, Yihan Lang et al.
Coordination Chemistry Reviews
Advanced oxidation water treatment
article

Reactive oxygen species in layered oxide cathodes: origins, interfacial cascade degradation, and stabilization strategies

Xinyu Hu, Guoqiang Zou, Chuanyong Niu, Yihan Lang, Wentao Deng, Jiuchang Ruan, Xinran Qi, Shengrui Gao, Xiaobo Ji, Jiangnan Huang, Hongshuai Hou, Lin Li, Yinghao Zhang, Jun Chen, Xinyu Zhang
article en

Abstract

Layered transition-metal oxides are key cathodes for high-energy lithium-ion and sodium-ion batteries, yet high-voltage operation often destabilizes lattice oxygen. Deep alkali-metal extraction reconstructs the transition-metal–oxygen (TM–O) electronic structure and increases O 2p participation in charge compensation, promoting oxygen-hole localization, O O coupling, and oxygen-vacancy formation. These processes can lead to the generation and release of reactive oxygen species (ROS). Together, lattice oxygen instability and ROS evolution couple bulk structural degradation with interfacial reactions, accelerating phase transitions, near-surface reconstruction, particle cracking, electrolyte decomposition, gas evolution, transition-metal dissolution, and cathode/electrolyte interphase degradation. This review summarizes the thermodynamic basis, generation pathways, and bulk-to-interface evolution of ROS in layered oxide cathodes, together with key methods for probing lattice oxygen-ROS evolution. Three representative drivers of oxygen instability are emphasized: high-valence TM–O electronic-structure reconstruction in Ni-rich layered oxides, local Li O Li configurations in Li-rich layered oxides, and desodiation-induced stacking strain in layered sodium oxides. Stabilization strategies based on bulk compositional regulation, ordered-structure design, surface coating, and electrolyte engineering are then discussed. Finally, challenges in identifying oxygen-related species and coordinating bulk, surface, and interfacial stabilization are outlined, providing guidance for designing high-energy layered cathodes with improved durability and safety.

Coordination Chemistry ReviewsVol. 570
Central South University (CN), Aarhus University (DK), China National Electric Apparatus Research Institute (China) (CN), State Key Laboratory of Powder Metallurgy
Openalex Percentile: Top 20%
Advanced oxidation water treatment
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