Revealing the Nature of Binary-Phase on Structural Stability of Sodium Layered Oxide Cathodes.
Renbin LiuWeiyuan HuangJie LiuYuhao LiJing WangQingshan LiuLu MaGihan KwonSteven N EhrlichYangyang WuTongchao LiuKhalil AmineHongsen LiPublished in: Advanced materials (Deerfield Beach, Fla.) (2024)
The emergence of layered sodium transition metal oxides featuring a multiphase structure presents a promising approach for cathode materials in sodium-ion batteries, showcasing notably improved energy storage capacity. However, the advancement of cathodes with multiphase structures faces obstacles due to the limited understanding of the integrated structural effects. Herein, the integrated structural effects by an in-depth structure-chemistry analysis in the developed layered cathode system Na x Cu 0.1 Co 0.1 Ni 0.25 Mn 0.4 Ti 0.15 O 2 with purposely designed P2/O3 phase integration, are comprehended. The results affirm that integrated phase ratio plays a pivotal role in electrochemical/structural stability, particularly at high voltage and with the incorporation of anionic redox. In contrast to previous reports advocating solely for the enhanced electrochemical performance in biphasic structures, it is demonstrated that an inappropriate composite structure is more destructive than a single-phase design. The in situ X-ray diffraction results, coupled with density functional theory computations further confirm that the biphasic structure with P2:O3 = 4:6 shows suppressed irreversible phase transition at high desodiated states and thus exhibits optimized electrochemical performance. These fundamental discoveries provide clues to the design of high-performance layered oxide cathodes for next-generation SIBs.
Keyphrases
- ion batteries
- transition metal
- density functional theory
- gold nanoparticles
- ionic liquid
- high resolution
- molecular dynamics
- molecularly imprinted
- magnetic resonance
- label free
- emergency department
- mass spectrometry
- metal organic framework
- electronic health record
- dual energy
- liquid chromatography
- data analysis
- adverse drug
- crystal structure