4.6 Article

Design of laser-driven SiO2-YAG:Ce composite thick film: Facile synthesis, robust thermal performance, and application in solid-state laser lighting

期刊

OPTICAL MATERIALS
卷 75, 期 -, 页码 508-512

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.optmat.2017.10.049

关键词

Luminescence saturation; Thermal quenching; Laser diode; Thick film; Phosphors

资金

  1. National Natural Science Foundation of China [51202060]
  2. Scientific Research Staring Foundation of Henan Polytechnic University [B2017-58]
  3. Program for Innovative Research Team of Henan Polytechnic University [T2017-2]
  4. Marie Curie International Incoming Fellowship (Return Phase) of the European Community Human Potential Program [PIIFR-GA-2013-913847]

向作者/读者索取更多资源

In recent times, there have been rapid advances in the solid-state laser lighting technology. Due to the large amounts of heat accumulated from the high flux laser radiation, color conversion materials used in solid-state laser lighting devices should possess high durability, high thermal conductivity, and low thermal quenching. The aim of this study is to develop a thermally robust SiO2-YAG:Ce composite thick film (CTF) for high-power solid-state laser lighting applications. Commercial colloidal silica which was used as the source of SiO2, played the roles of an adhesive, a filler, and a protecting agent. Compared to the YAG:Ce powder, the CIF exhibits remarkable thermal stability (11.3% intensity drop at 200 degrees C) and durability (4.5% intensity drop after 1000 h, at 85 degrees C and 85% humidity). Furthermore, the effects of the substrate material and the thickness of the CTF on the laser lighting performance were investigated in terms of their thermal quenching and luminescence saturation behaviors, respectively. The CTF with a thickness of 50 mu m on a sapphire substrate does not show luminescence saturation, despite a high-power density of incident radiation i.e. 20 W/mm(2). These results demonstrate the potential applicability of the CTF in solid-state laser lighting devices. (C) 2017 Elsevier B.V. All rights reserved.

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