研究目的
To design and prepare a double-layer white light converter with high efficiency heat transfer structure for high-power NUV LEDs/LDs, aiming to achieve high optical-optical conversion efficiency, conspicuous CRI, and suitable CCT.
研究成果
The double-layer white light converter demonstrated excellent optical properties and thermal performance, making it suitable for high-power NUV LEDs/LDs applications. The design effectively reduces temperature under high-power excitation and achieves high optical-optical conversion efficiency with conspicuous CRI and suitable CCT.
研究不足
The study focuses on the thermal and optical performance of the double-layer converter under specific conditions. Potential areas for optimization include further improving the thermal conductivity of the PIS film and exploring other phosphor materials for enhanced performance.
1:Experimental Design and Method Selection:
The study involved designing a double-layer white light converter by coating a blue/green emitting phosphor-in-silicone (PIS) film on a red emitting transparent ceramic substrate. The vacuum reactive sintering method was used for synthesizing transparent ceramics.
2:Sample Selection and Data Sources:
Transparent ceramics with compositions of (SmxY1-x)3Al5O12 were synthesized. Commercial Al2O3 was used as raw materials.
3:List of Experimental Equipment and Materials:
Equipment included a vacuum sintering furnace, SEM, XRD, UV-VIS-NIR spectrometer, fluorescence spectrometer, spectral radiometer, and thermal infrared imager. Materials included Y2O3, Sm2O3, Al2O3, MgO, TEOS, and various phosphor powders.
4:Experimental Procedures and Operational Workflow:
The process involved powder preparation, mixing, pressing, sintering, polishing, and coating with PIS film.
5:Data Analysis Methods:
Optical properties were measured using spectrometers and radiometers. Thermal performance was analyzed using infrared thermal imaging and steady state thermal simulation.
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X-ray powder diffractometer
D8 Advance
Bruker
Recording XRD patterns
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UV-VIS-NIR spectrometer
Lambda 950
PerkinElmer
Measuring transmittance spectra
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Fluorescence spectrometer
FLS920P
Edinburgh
Recording steady fluorescence intensity and excitation spectra
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SEM
S-4800
Hitachi
Examining the microstructure of samples
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Spectral radiometer
HAAS-1200
Everfine
Measuring luminous flux
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Thermal infrared imager
PC-160
RNO
Obtaining surface steady state heat distribution of samples
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Digital camera
D90
Nikon
Recording photographs
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