研究目的
Investigating the structures, electrochemical performances, and thermal stabilities of ultrathin TiO2 and ZnO coatings on lithium-rich layered oxide cathodes (Li1.2Mn0.6Ni0.2O2, LLO) deposited by atomic layer deposition (ALD).
研究成果
The ALD TiO2 and ZnO coated lithium-rich layered oxide cathodes exhibited improved cycling performance and thermal stability compared to pristine samples. The TiO2 coated samples showed superior initial charge?discharge capacities, polarization loss, and rate capability, attributed to the lower resistance of the charge transfer and the uniform layer morphology of TiO2. The study provides insights into the role of coating morphology in enhancing the electrochemical performance of cathode materials for Li-ion batteries.
研究不足
The study highlights the differences in layer growth mechanisms between TiO2 and ZnO coatings, with TiO2 forming a more uniform layer compared to the island structure of ZnO. The limitations include the specific focus on ALD coatings and the need for further optimization of coating parameters for enhanced performance.
1:Experimental Design and Method Selection:
The study employed atomic layer deposition (ALD) for coating TiO2 and ZnO on LLO cathodes. The electrochemical performances and thermal stabilities of these coatings were investigated.
2:Sample Selection and Data Sources:
Lithium-rich layered oxide cathodes (Li1.2Mn0.6Ni0.2O2) were synthesized by a sol?gel method and used as the base material for ALD coating.
3:2Mn6Ni2O2) were synthesized by a sol?gel method and used as the base material for ALD coating.
List of Experimental Equipment and Materials:
3. List of Experimental Equipment and Materials: ALD equipment for TiO2 and ZnO coating, Philips diffractometer for XRD, JEOL JSM-7800F SEM, JEOL JEM-2100F TEM, ULVAC-PHI PHI 5000 VersaProbe XPS, TA Instrument TGA2950 DSC, Solartron 1260 impedance analyzer for EIS.
4:Experimental Procedures and Operational Workflow:
The LLO cathodes were coated with TiO2 and ZnO using ALD. The coated samples were then characterized for their structure, morphology, and electrochemical performance.
5:Data Analysis Methods:
XRD for structural analysis, SEM and TEM for morphology, XPS for surface composition, DSC for thermal stability, and EIS for electrochemical impedance.
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