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A double-layer white light converter with high efficiency heat transfer structure for high-power NUV LEDs/LDs

DOI:10.1021/acsaelm.9b00524 期刊:ACS Applied Electronic Materials 出版年份:2019 更新时间:2025-09-12 10:27:22
摘要: As a next-generation lighting technology, high-power light-emitting diodes (LEDs) and lasing diodes (LDs) lighting have attracted great attention to high-brightness applications. However, producing an efficient illumination-grade color converter with a conspicuous color rendering index (CRI) and a suitable correlated color temperature (CCT) remains an outstanding challenge in the field of high-power LEDs/LDs lighting. In this work, a double-layer white light converter with high efficiency heat transfer structure was designed and prepared by precisely coating a blue/green emitting phosphor-in-silicone (PIS) film on red emitting transparent ceramic substrate. The well-designed double-layer converter exhibits excellent optical properties that the optical-optical conversion efficiency can achieve 156 lm/W with conspicuous CRI (92.6), CIE chromaticity coordinate (0.332, 0.335) and suitable CCT (5511K), respectively. Furthermore, the heat transfer efficiency of the double-layer converter was analyzed and simulated by using infrared thermal imaging and steady state thermal simulation, which reduce the temperature efficiently than single-layer converter under high-power NUV LEDs/LDs excitation. These comprehensive performance show that the double-layer converters are promising as NUV LEDs/LDs-driven phosphors in high-power solid-state lighting devices.
作者: Ruilin Zheng,Qi Zhang,Yongjin Gao,Jianyong Ding,Lili Fu,Chunxiao Liu,Wei Wei
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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.

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.

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.

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