材料科学
阴极
密度泛函理论
电负性
化学物理
配体(生物化学)
氧气
格子(音乐)
电子
扫描透射电子显微镜
结晶学
失真(音乐)
凝聚态物理
分子物理学
结构稳定性
诱导效应
氧化还原
变形(气象学)
透射电子显微镜
析氧
晶体缺陷
作者
Eunseong Choi,C.G. Hwang,Kyoung Eun Lee,Youngsu Lee,Jaesub Kwon,Jong‐Heon Lim,H. Jang,Yong‐Tae Kim,Kyu‐Young Park
标识
DOI:10.1002/adfm.202512501
摘要
Abstract Ni‐rich cathodes stand out for their ability to achieve high energy density in Li‐ion batteries. However, their long‐term cycling stability is challenged by excessive oxygen redox activity, the fundamental atomic‐scale behavior of which remains poorly understood—particularly the nature of oxygen double ligand hole states and their suppression. This study demonstrates that Jahn–Teller distortion promotes unexpected intralayer O─O pairing, coupled with Ni─O hybridization, leading to the formation of double ligand holes in LiNiO 2 and oxygen evolution at high state‐of‐charge (SoC). These intralayer O─O pairs are visualized by 4D scanning transmission electron microscopy and identified as peroxo‐like species with an average O─O distance of 2.428 Å at 60% SoC. Meanwhile, substitution with elements such as Al 3+ and Sc 3+ , which possess low electronegativity and an n p 6 electron configuration, induces an abnormal inductive effect that deviates from conventional electronegativity‐based frameworks. This phenomenon is attributed to electron localization on lattice oxygen, which effectively prevents local lattice distortion and the accumulation of TM─O and O─O ligand holes. These findings establish a fundamental correlation between structural deformation and ligand hole states, advancing the conceptual framework for Ni‐rich cathode design beyond conventional molecular orbital theory and electronegativity‐guided substitution strategies.
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