发光
材料科学
发光二极管
铕
复合数
猝灭(荧光)
透射率
镧系元素
涂层
光电子学
复合材料
热导率
光学
荧光
有机化学
化学
离子
物理
作者
Jinhui Zhang,Shuming Gong,Jinbo Yu,Peng Li,Xuejie Zhang,Yuwei He,Jianbang Zhou,Rui Shi,Huanrong Li,Ai‐Yun Peng,Jing Wang
标识
DOI:10.1021/acsami.6b15739
摘要
Nowadays, it is still a great challenge for lanthanide complexes to be applied in solid state lighting, especially for high-power LEDs because they will suffer severe thermal-induced luminescence quenching and transmittance loss when LEDs are operated at high current. In this paper, we have not only obtained high efficient and thermally chemical stable red emitting hybrid material by introducing europium complex into nanozeolite (NZ) functionalized with the imidazolium-based stopper but also abated its thermal-induced transmittance loss and luminescence quenching behavior via coating it onto a heat-resistant luminescent glass (LG) with high thermal conductivity (1.07 W/mK). The results show that the intensity at 400 K for Eu(PPO)n-C4Si@NZ@LG remains 21.48% of the initial intensity at 300 K, which is virtually 153 and 13 times the intensity of Eu(PPO)3·2H2O and Eu(PPO)n-C4Si@NZ, respectively. Moreover, an organic-resin-free warm white LEDs device with a low CCT of 3994K, a high Ra of 90.2 and R9 of 57.9 was successfully fabricated simply by combining NUV-Chip-On-Board with a warm white emitting glass-film composite (i.e., yellowish-green emitting luminescent glass coated with red emitting hybrid film). Our method and results provide a feasible and promising way for lanthanide complexes to be used for general illumination in the future.
科研通智能强力驱动
Strongly Powered by AbleSci AI