Article, 2024

Pore-existing phosphor-in-glass film realizing ultra-efficient and uniform laser lighting

Journal of Luminescence, ISSN 0022-2313, 1872-7883, Volume 266, Page 120337, 10.1016/j.jlumin.2023.120337

Contributors

Liu, Bing-Guo [1] Pang, Shiqing [1] Chen, Xinrong [1] Yuan, Shaoda [1] Jiang, Zhi 0009-0006-3087-3111 [1] Ye, Zhaomeng [1] Xu, Jian 0000-0003-0618-5467 (Corresponding author) [1] Zhang, Le (Corresponding author) [2] Du, Bao-Li 0000-0003-2486-9467 [1] Dam-Hansen, Carsten 0000-0001-7518-4025 [3] Jensen, Ole Bjarlin 0000-0002-4295-5951 [3]

Affiliations

  1. [1] Henan Polytechnic University
  2. [NORA names: China; Asia, East];
  3. [2] Jiangsu Normal University
  4. [NORA names: China; Asia, East];
  5. [3] Technical University of Denmark
  6. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

The development of phosphor-converted laser lighting has encountered a significant problem: the difficulty of homogeneously mixing the laser light with the luminescent light. Previous studies reveal that enhancing the scattering of the phosphor can improve color mixing but often sacrifices luminous efficacy and limits the peak luminance. To address this, a pore-existing YAG:Ce-based phosphor-in-glass film is prepared using the screen-printing technique. Interestingly, it is found that the pore size is highly correlated with the thickness, with thicker samples having larger pores. When excited by blue laser, a typical sample with a thickness of 60 μm exhibits an ultra-high luminous efficacy of 261 lm/W and a high saturation threshold of 20.5 W (9.1 W/mm2), resulting in a peak luminous exitance of 1244 lm/mm2@3839 lm. Furthermore, the color mixing was evaluated via angular color temperature distribution, showing uniform light emission with a maximum correlated color temperature (CCT) variation of only ∼800 K.

Keywords

CCT, blue laser, color, color mixing, color temperature, color temperature distribution, development, difficulties, distribution, efficacy, emission, exit, films, laser, laser light, light, light emission, luminance, luminescence light, luminous efficacy, maximum, mixing, peak, peak luminance, phosphor-in-glass films, phosphors, pore, pore size, problem, samples, saturation, saturation threshold, scattering, screen printing technique, size, study, technique, temperature, temperature distribution, thicker samples, thickness, threshold, ultra-efficient, uniform light emission, variation

Funders

  • National Natural Science Foundation of China
  • Ministry of Science and Technology of the People's Republic of China
  • Marie Curie
  • European Commission

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