Solid-State Reaction Heterogeneity During Calcination of Lithium-Ion Battery Cathode.
Sugeun JoJeongwoo HanSungjae SeoOh-Sung KwonSubin ChoiJin ZhangHyejeong HyunJuhyun OhJuwon KimJinkyu ChungHwiho KimJian WangJunho BaeJunyeob MoonYoon-Cheol ParkMoon-Hi HongMiyoung KimYijin LiuIl SohnKeeyoung JungJongwoo LimPublished in: Advanced materials (Deerfield Beach, Fla.) (2023)
During solid-state calcination, with increasing temperature, materials undergo complex phase transitions with heterogeneous solid-state reactions and mass transport. Precise control of the calcination chemistry is therefore crucial for synthesizing state-of-the-art Ni-rich layered oxides (LiNi 1-x-y Co x Mn y O 2 , NRNCM) as cathode materials for lithium-ion batteries. Although the battery performance depends on the chemical heterogeneity during NRNCM calcination, it has not yet been elucidated. Herein, through synchrotron-based X-ray, mass spectrometry microscopy, and structural analyses, it is revealed that the temperature-dependent reaction kinetics, the diffusivity of solid-state lithium sources, and the ambient oxygen control the local chemical compositions of the reaction intermediates within a calcined particle. Additionally, it is found that the variations in the reducing power of the transition metals (i.e., Ni, Co, and Mn) determine the local structures at the nanoscale. The investigation of the reaction mechanism via imaging analysis provides valuable information for tuning the calcination chemistry and developing high-energy/power density lithium-ion batteries.
Keyphrases
- solid state
- high resolution
- mass spectrometry
- single cell
- transition metal
- reduced graphene oxide
- metal organic framework
- ion batteries
- air pollution
- electron transfer
- high throughput
- liquid chromatography
- single molecule
- atomic force microscopy
- high speed
- drug discovery
- gold nanoparticles
- computed tomography
- heavy metals
- solar cells
- optical coherence tomography
- magnetic resonance imaging
- health risk
- risk assessment
- magnetic resonance
- high performance liquid chromatography
- photodynamic therapy
- drinking water
- gas chromatography
- aqueous solution
- contrast enhanced
- simultaneous determination
- health information