研究目的
To develop an efficient cyan-emitting Ce3+-doped Ca2YHf2Al3O12 garnet phosphor with good thermal stability for next-generation high-quality solid-state white lighting.
研究成果
The developed CYHAO:Ce3+ garnet phosphor exhibits excellent cyan emission, high quantum efficiency, and good thermal stability, making it a promising candidate for high-quality solid-state white lighting applications. The fabricated w-LED device demonstrates high color rendering index and low correlated color temperature, indicating the potential for full-visible-spectrum lighting.
研究不足
The study focuses on the development and characterization of a cyan-emitting phosphor. Potential limitations include the scalability of the synthesis process and the long-term stability under continuous operation in LED devices.
1:Experimental Design and Method Selection:
A series of Ca2Y(1-x)Hf2Al3O12:xCe3+ powder samples were prepared by a conventional high-temperature solid-state reaction. The raw materials were weighed, ground, and sintered at 600 oC for 4 h, then calcined at 1600 oC for 4 h in a reducing atmosphere.
2:Sample Selection and Data Sources:
Raw materials included CaCO3, Y2O3, HfO2, Al2O3, and Ce(NO3)3·6H2O.
3:2O. List of Experimental Equipment and Materials:
3. List of Experimental Equipment and Materials: Equipment included a Bruker D8 Advance diffractometer for XRD, FE-SEM (Quanta FEG 250) for morphology, and Edinburgh FS5 spectrometer for PL and PLE spectra.
4:Experimental Procedures and Operational Workflow:
Mixtures were ground, sintered, and calcined. Products were ground into fine powders for characterizations.
5:Data Analysis Methods:
XRD for phase purity, Rietveld refinement for crystal structure, integrating sphere method for IQE and EQE measurements.
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