Development of a double-sided heat-conducting BN@PiGF@Al2O3 color converter for high-brightness laser lighting

Abstract

A color converter is a critical component in realizing new-generation laser lighting because it displays thermal-induced luminescence saturation due to substantial heat accumulation. Herein, a multi-channel thermal design was introduced in a phosphor-in-glass film (PiGF) color converter, and a double-sided heat-conducting BN@PiGF@Al2O3 converter was proposed for high-brightness laser lighting. The BN@PiGF@Al2O3 was prepared via low-temperature sintering of a PiGF on a reflective Al2O3 substrate, which was then topped with a BN-in-glass (BiG) layer. The PiGF thickness was adjusted to control the photo-thermal performance of the laser-driven BN@PiGF@Al2O3. As the Y3Al5O12:Ce3+ (YAG) PiGF thickness reached 80 μm, the laser-driven BN@PiGF@Al2O3 emitted white light with a correlated color temperature (CCT) of 5823 K and a chromaticity coordinate of (0.3251, 0.3441) under a laser power density (LPD) of 30 W mm−2. The BN@PiGF@Al2O3 yielded a high luminous flux (LF) of 4784 lm@30 W mm−2, which was 1.39 times that of the traditional PiGF@Al2O3 converter with an LF of 3445 lm@18 W mm−2. Furthermore, the BN@PiGF@Al2O3 displayed a working temperature of 232 °C under an LPD of 30 W mm−2. The results demonstrate that the BN@PiGF@Al2O3 displays efficient double-sided heat transfer and improved luminescence saturation, making it a promising reflective color converter for high-brightness laser lighting.

Graphical abstract: Development of a double-sided heat-conducting BN@PiGF@Al2O3 color converter for high-brightness laser lighting

Article information

Article type
Paper
Submitted
14 May 2025
Accepted
08 Jun 2025
First published
10 Jun 2025

J. Mater. Chem. C, 2025, Advance Article

Development of a double-sided heat-conducting BN@PiGF@Al2O3 color converter for high-brightness laser lighting

T. Xu, H. Zhang, M. Liang, J. Zhao, X. Liu, M. Chen and Y. Peng, J. Mater. Chem. C, 2025, Advance Article , DOI: 10.1039/D5TC01922B

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