无机材料学报 ›› 2022, Vol. 37 ›› Issue (12): 1358-1364.DOI: 10.15541/jim20220249

• 研究快报 • 上一篇    下一篇

高功率激光照明用Al2O3-YAG:Ce复相陶瓷荧光体的组分设计与性能优化

程梓秋1,2(), 王雁斌1,3, 刘欣1,2, 代正发1,2, 陈昊鸿1,2, 田丰1,2, 陈鹏辉1,2, 李江1,2()   

  1. 1.中国科学院 上海硅酸盐研究所, 透明光功能无机材料重点实验室, 上海 201899
    2.中国科学院大学 材料科学与光电工程中心, 北京 100049
    3.江苏大学 材料科学与工程学院, 镇江 212013
  • 收稿日期:2022-04-26 修回日期:2022-05-18 出版日期:2022-12-20 网络出版日期:2022-08-26
  • 通讯作者: 李 江, 研究员. E-mail: lijiang@mail.sic.ac.cn
  • 作者简介:程梓秋(1998-), 男, 硕士研究生. E-mail: chengziqiu20@mails.ucas.ac.cn

Component Regulation and Performance Optimization of Al2O3-YAG:Ce Composite Ceramic Phosphors for High-power Laser Lighting

CHENG Ziqiu1,2(), WANG Yanbin1,3, LIU Xin1,2, DAI Zhengfa1,2, CHEN Haohong1,2, TIAN Feng1,2, CHEN Penghui1,2, LI Jiang1,2()   

  1. 1. Key Laboratory of Transparent Opto-Functional Inorganic Materials, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 201899, China
    2. Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, China
    3. School of Material Science and Engineering, Jiangsu University, Zhenjiang 212013, China
  • Received:2022-04-26 Revised:2022-05-18 Published:2022-12-20 Online:2022-08-26
  • Contact: LI Jiang, professor. E-mail: lijiang@mail.sic.ac.cn
  • About author:CHENG Ziqiu (1998-), male, Master candidate. E-mail: chengziqiu20@mails.ucas.ac.cn
  • Supported by:
    Strategic Priority Research Program of Chinese Academy of Sciences(XDA22010301)

摘要:

结合蓝色激光二极管和黄色荧光转换器制备的固态激光照明引起了人们极大的关注, 但荧光转换材料的热猝灭效应显著影响了高功率激光照明的实现。通过组分设计和性能优化可以提高荧光转换器的热导率和发光均匀性。本工作采用固相反应烧结技术制备了一系列不同Al2O3含量的Al2O3-YAG:Ce复相陶瓷荧光体, 研究了Al2O3含量对Al2O3-YAG:Ce陶瓷荧光体微观结构、相组成、光学性能和热学性能的影响。Al2O3-YAG:Ce陶瓷荧光体在800 nm处的总透过率随着Al2O3含量的增加(0→90%)而下降(82.6%→23.6%)。Al2O3-YAG:Ce陶瓷荧光体的激发和发射强度随Al2O3含量的增加先增大后减小。当Al2O3/Al2O3-YAG:Ce的质量比为70%时, 陶瓷荧光体在室温下的热导率高达25.7 W·m-1·K-1, 且表现出最高的发射强度。当采用功率密度为20 W·mm-2的蓝光二极管泵浦 70% Al2O3-YAG:Ce复相陶瓷荧光体时, 可获得3724 lm的高光通量和239.4 lm·W-1的高流明效率。此外, 当功率密度从1 W·mm-2增大到20 W·mm-2时, 流明效率仅下降10.5%, 光通量持续增加且未出现发光饱和。上述结果显示, Al2O3-YAG:Ce复相陶瓷荧光体具有良好的发光效率和热稳定性, 将在高功率激光照明中具有广阔的应用前景。

关键词: Al2O3-YAG:Ce, 激光照明, 流明效率, 组分设计, 性能优化

Abstract:

Solid-state laser lighting fabricated by combining blue laser diodes (LDs) and yellow-emitting phosphor converters has attracted great attention in high-luminance applications. However, the achievement of high-power laser lighting is significantly affected by the thermal quenching effect of phosphor converter materials. Therefore, component regulation and performance optimization are required to improve the thermal conductivity and luminescence uniformity of phosphor converters. In this work, a series of Al2O3-YAG:Ce composite ceramic phosphors with different Al2O3 contents were prepared by solid-state reaction sintering. The influences of Al2O3 contents on the microstructure, phase composition, optical properties and thermal performance of the Al2O3-YAG:Ce ceramic phosphors were investigated in detail. The total transmittance of the Al2O3-YAG:Ce ceramic phosphors at 800 nm tends to decline (82.6%→23.6%) with the increase of Al2O3 content (0→90%, weight ratio). Both excitation and emission intensity of the Al2O3-YAG:Ce ceramic phosphors initially increase and then decrease with increasing Al2O3 content. When the weight ratio of Al2O3/Al2O3-YAG:Ce is 70%, the ceramic phosphor exhibits a high thermal conductivity of 25.7 W·m-1·K-1 at room temperature and the highest emission intensity. A high luminous flux of 3724 lm and luminous efficacy of 239.4 lm·W-1 are obtained when pumping the 70% Al2O3-YAG:Ce ceramic phosphor with blue LDs at a power density of 20 W·mm-2. Additionally, the luminous efficacy only decreases by 10.5% and the luminous flux continues to increase without showing luminescence saturation, when the power density increases from 1 W·mm-2 to 20 W·mm-2. Therefore, the Al2O3-YAG:Ce composite ceramic phosphors are promising in high-power laser lighting for excellent luminous efficiency and improved thermal stability.

Key words: Al2O3-YAG:Ce, laser lighting, luminous efficacy, component regulation, performance optimization

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