Anchoring oxygen on LiNi0.94Co0.05Mn0.01O2 surface by coating TixNbB(1−x)C2 boosts long-cycle stability of all-solid-state lithium batteries

Jingchi Zhang, Ze Hua, Ziqi Wu, Xinting Cao, Wen Yang*, Ruiwen Shao, Yu Bai, Zhenhua Wang, Kening Sun

*此作品的通讯作者

科研成果: 期刊稿件文章同行评审

摘要

To satisfy the demands of modern society for high-energy–density sulfide-based all-solid-state lithium batteries (ASSLBs), Ni-rich cathode materials have gained much attention for their high capacity and energy density. However, their practical deployment is hindered by accelerated interface degradation and capacity decay originating from surface oxygen release and lattice oxygen activation during prolonged cycling. In this study, TixNbB(1−x)C2 was successfully coated on the surface of LiNi0.94Co0.05Mn0.01O2. Density functional theory (DFT) calculations first elucidate a “point-to-point” anchoring mechanism where each surface oxygen atom coordinates with single species (Ti/Nb/B) offered by TixNbB(1−x)C2, which forms robust O–M bonds and sustain a stable interface structure. The electron energy loss spectroscopy (EELS) reveals the segregation of Ti/Nb toward subsurface layers during cycling, creating an optimized lattice oxygen coordination environment and suppressing oxygen activation. The dual oxygen stabilization mechanism dramatically improves the reversibility of phase transition and the structural stability of the Ni-rich cathode materials. Moreover, TixNbB(1−x)C2 as the protective layer decreases mechanical strain and suppresses the parasitic reactions. Consequently, the engineered cathode delivers 91% capacity retention after 1000 cycles at 0.3 C, suggesting excellent cycling stability. The research delivers a new design philosophy for the coating layer that can stabilize surface oxygen. Furthermore, the atomistic understanding of the structure–property relationship of the Ni-rich cathode materials provides valuable guidance for the future design of new cathode materials with superior structural stability in ASSLBs.

源语言英语
页(从-至)183-193
页数11
期刊Journal of Energy Chemistry
107
DOI
出版状态已出版 - 8月 2025
已对外发布

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