拉曼光谱
材料科学
歧化
电子结构
单斜晶系
非阻塞I/O
光谱学
结晶学
物理化学
凝聚态物理
晶体结构
化学
物理
生物化学
量子力学
光学
催化作用
作者
Quentin Jacquet,Nataliia Mozhzhukhina,Peter N. O. Gillespie,Gilles Wittmann,Lucía Pérez Ramírez,F. G. Capone,Jean‐Pascal Rueff,Stéphanie Belin,Rémi Dedryvère,Lorenzo Stievano,Aleksandar Matic,Emmanuelle Suard,N. B. Brookes,Alessandro Longo,Deborah Prezzi,Sandrine Lyonnard,Antonella Iadecola
标识
DOI:10.1002/aenm.202401413
摘要
Abstract The intricate relationship between local atomic arrangements and electronic states significantly influences the electrochemical properties of Li‐ion battery cathode materials. Despite decades of investigation, a consensus regarding the local atomic and electronic structure of LiNiO 2 remains elusive. This ambiguity stems from the potential distortion of Ni sites, either via Jahn‐Teller (JT) distortion or bond disproportionation (BD), complicating the understanding of the charge compensation mechanism involving Ni and O. This study compares the structures of LiNiO 2 and NaNiO 2 , a JT system, using an innovative approach that integrates bulk spectroscopy techniques on standardized interoperable samples for enhanced reliability. While X‐ray absorption spectroscopy and theoretical calculations fail to differentiate between the proposed scenarios, Raman spectroscopy highlights local structural distinctions between monoclinic NaNiO 2 and rhombohedral LiNiO 2 . HAXPES confirms various formal oxidation states for Ni, supported by RIXS data indicating 3d 8 states, emphasizing negative charge transfer from Ni and some bond disproportionation in LiNiO 2 . Regarding charge compensation, XRS and RIXS suggest oxygen hole involvement in redox activity, whereas Raman spectroscopy does not detect molecular oxygen. This comprehensive spectroscopic analysis highlights the importance of correlative characterization workflows in elucidating complex structural‐electrochemical relationships.
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