Electronic structure formed by Y2O3-doping in lithium position assists improvement of charging-voltage for high-nickel cathodes
Электронная структура, сформированная при допировании Y2O3 в позицию лития, способствует повышению напряжения зарядки для никелесодержащих катодов
2025-01-02
SCID: 54.1/kfwz4ct2
Discuss with AI
LiNi0.83Co0.12Mn0.05O2 high-nickel cathodeY2O3-doping in lithium positionelectronic structure reconstructionreduction coupling mechanismsuppression of oxygen defects and Ni4+ concentration
Figures from the paper
Abstract (AI)
High-capacity power battery can be attained through the elevation of the cut-off voltage for LiNi0.83Co0.12Mn0.05O2 high-nickel material. Nevertheless, unstable lattice oxygen would be released during the lithium deep extraction. To solve the above issues, the electronic structure is reconstructed by substituting Li+ ions with Y3+ ions. The dopant within the Li layer could transfer electrons to the adjacent lattice oxygen. Subsequently, the accumulated electrons in the oxygen site are transferred to nickel of highly valence state under the action of the reduction coupling mechanism. The modified strategy suppresses the generation of oxygen defects by regulating the local electronic structure, but more importantly, it reduces the concentration of highly reactive Ni4+ species during the charging state, thus avoiding the evolution of an unexpected phase transition. Strengthening the coupling strength between the lithium layers and transition metal layers finally realizes the fast-charging performance improvement and the cycling stability enhancement under high voltage. Authors report on restructuring the electronic structure of a high-nickel material by substituting Li+ ions with Y3+ ions. This strategy suppresses the generation of oxygen defects with a reduction coupling mechanism improving high-voltage stability.
Key Findings
1
Reducing Ni4+ formation and regulating local electronic structure prevents unexpected phase transitions during high-voltage charging.
2
Strengthened coupling between lithium layers and transition-metal layers from Y-doping improves fast-charging performance and cycling stability at high cut-off voltages.
3
Substituting Li+ with Y3+ in LiNi0.83Co0.12Mn0.05O2 reconstructs local electronic structure by placing dopant within Li layer.
4
This electronic-structure modification suppresses oxygen defect generation and reduces concentration of reactive Ni4+ during charging.
5
Y3+ dopant transfers electrons to adjacent lattice oxygen, which then transfer electrons to high-valence Ni via a reduction coupling mechanism.
Research Object
LiNi0.83Co0.12Mn0.05O2 (high-nickel cathode) with Y3+ substituted into lithium sites (Y2O3-doped lithium positions)
Research Subject
Reconstruction of local electronic structure by Y3+ substitution at Li sites and its effect on suppressing oxygen defects, reducing Ni4+ concentration, stabilizing lattice/phase and improving charging-voltage, fast-charging performance and cycling stability at high cut-off voltage
Publication Details
Publication Date
2025-01-02
Journal
Publisher
ISSN
Cited by
507
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest