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◆ ACS Applied Materials & Interfaces2026-04-09· Cathode

In Situ Atomic Arrangement and Defect Engineering of Li-Rich Cathodes for Interface Stabilization

Yueying Liu, Mengke Zhang, Shuli Zheng, Binbin Yan, Yi Shi, Jiahui Xu, Lang Qiu, Xiaodong Guo

原始摘要(英文原文)· Original abstract
Coming research trends will move toward high-energy-density Li-rich manganese layered (LMR) cathodes (>900 Wh kg –1 ). Nevertheless, their practical implementation is severely impeded by irreversible lattice oxygen release, progressive structural deterioration, pronounced capacity, and voltage decay. A critical unresolved issue arises from the absence of an effective atomic-scale design principle capable of stabilizing the interfacial structure and suppressing the layer-to-rock salt transformation, an instability pathway that is further aggravated in high-Ni LMR compositions. In this work, we establish an in situ atomic-level regulation strategy through La 3+ /W 6+ codoping, which induces the formation of an interface-disordered phase while preserving the integrity of the layered framework. This strategy provides a direct resolution to this long-standing structural challenge by enabling controlled oxygen-vacancy generation and localized cation rearrangement at the near-surface region, thereby effectively suppressing detrimental phase transitions during electrochemical cycling and simultaneously enhancing Li + transport kinetics. The introduction of robust La–O and W–O bonds further reinforces the interfacial oxygen framework and markedly improves thermal stability. As a consequence, the modified cathode demonstrates substantially enhanced electrochemical durability. Compared with the original sample, the capacity retention rate of LW-3 is 80.25%, which is significantly better than that of LMR (66.26%). Moreover, the results substantiate that high-Ni LMR compositions possess an intrinsic propensity toward layered-to-rock-salt transformation, which profoundly compromises structural and electrochemical stability. This work strengthens the structural integrity and mechanical resilience of LMR cathodes and offers a responsible strategy toward realizing high-energy, long-life Li-rich layered oxides suitable for next-generation energy storage technologies.
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