Cooling photoluminescent phosphors in laser-excited white lighting with three-dimensional boron nitride networks

荧光粉 材料科学 色度 光电子学 氮化硼 光致发光 激光器 发光 激发态 色温 热导率 二极管 光学 纳米技术 复合材料 物理 核物理学
作者
Weixian Zhao,Bin Xie,Yang Peng,Song Xue,Xiaobing Luo,Run Hu
出处
期刊:Optics and Laser Technology [Elsevier BV]
卷期号:157: 108689-108689 被引量:8
标识
DOI:10.1016/j.optlastec.2022.108689
摘要

Laser-excited white lighting, which is achieved by laser diodes and phosphor converters, has garnered increasing interest in recent years due to their high-power and high-brightness characteristics. Nevertheless, two long-standing thermal issues remain formidable: first, the photoluminescent phosphors also generate heat due to the Stokes loss, which are the second heat source in the packaging but long ignored; second, the phosphors are embedded in low-thermal-conductivity silicone and the generated heat is rather inefficient to dissipate. As a result, the accumulated heat leads to high temperature in phosphor particles and even thermal quenching, which deteriorate the luminescence, chromaticity, and reliability. In this work, these problems are successfully addressed by establishing three-dimensional (3D) boron nitride (BN) networks to cool the silicone-embedded phosphor particles in a facile and scalable method. When lighted under the driven current of 900 mA, the working temperature of phosphor layer is dramatically decreased by 95.2 °C with the 3D-BN network without sacrificing the luminescence and chromaticity. Such strategy with excellent cooling performance, high reliability, and easy scalability may hold great promise for broader optoelectronics applications beyond laser-excited white lighting.
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