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Nano‐Particulate Surface Pinning of CeO <sub>2</sub> Enables Durable High‐Voltage Lithium‐Ion Batteries

Zezhou Lin, Zhihang Xu, Yiran Ying, Gao Chen, Xi Gong, Daqin Guan, Yang Ren, Honglei Zhang, Xiao Wei Sun, Zhaowen Bai, Yang Ren, Ting‐Shan Chan, Yu‐Cheng Huang, Ye Zhu, Peiyu Hou, Zongping Shao, Haitao Huang

2025Advanced Materials15 citationsDOI

Abstract

Abstract Elevating the cut‐off voltage of LiCoO 2 (LCO) cathode in lithium‐ion batteries (LIBs) enhances capacity but increases structural instability. While surface coatings are used to mitigate structural degradation at high voltages, conventional full coverage coatings often fail to withstand the cyclic mechanical stress, resulting in crack formation and performance decay. Here, a multifunctional CeO 2 nanoparticle (NP) pinning structure is designed as a surface coating on LCO (LCO@CeO 2 ) to enable stable operation at a high cut‐off voltage of 4.6 V (vs Li/Li + ). This surface pinning architecture balances structural integrity with minimal inactive material usage. The CeO 2 NPs are strategically anchored to the LCO surface, creating a pinning structure that accommodates volume changes and suppresses fracture formation in the cathode. Moreover, the CeO 2 ‐mediated fast Li + transport pathways are established, improving high‐rate capability. The interspersed CeO 2 NPs also act as oxygen reservoirs, stabilizing reversible (O 2 ) 3− species during high‐voltage oxygen anionic redox reactions. Consequently, the optimized LCO@CeO 2 cathode achieves a capacity retention of 85.3% after 500 cycles at 1C and a high‐rate capacity of 124.8 mAh g −1 at 10C. This CeO 2 NP pinning structure offers a novel practical strategy for designing durable high‐voltage layered cathodes.

Topics & Concepts

Materials scienceCathodeCoatingNanoparticleComposite materialNanotechnologyDegradation (telecommunications)OxygenVoltageSurface modificationHigh voltageStructural materialDurabilityElectrodeStructural integrityOxygen evolutionMicrostructureOptoelectronicsSurface structureRedoxChemical engineeringSurface (topology)Advancements in Battery MaterialsSupercapacitor Materials and FabricationAdvanced Battery Materials and Technologies
Nano‐Particulate Surface Pinning of CeO <sub>2</sub> Enables Durable High‐Voltage Lithium‐Ion Batteries | Litcius