期刊文献+
共找到1篇文章
< 1 >
每页显示 20 50 100
Controllable Crystallization Optimizes Thermal Stability of A Novel Red-emitting Phosphor in Self-reduction System
1
作者 LU Shiwei DONG Rui +5 位作者 BAI Yuxing DU Haihong ZHENG Lirong WU Li KONG Yongfa XU Jingjun 《发光学报》 北大核心 2025年第2期285-295,共11页
Thermal quenching(TQ)at elevated temperature is a major factor affecting the luminescent intensity and efficiency of phosphors.Improving the thermal stability of phosphors and weakening the TQ effect are of significan... Thermal quenching(TQ)at elevated temperature is a major factor affecting the luminescent intensity and efficiency of phosphors.Improving the thermal stability of phosphors and weakening the TQ effect are of significance for the high-quality illumination of phosphor-converted WLEDs.Here,a novel red-emitting phosphor K_(2)Zn(PO_(3))_(4)∶Mn^(2+)is synthesized by standard high temperature solid state reaction in ambient atmosphere,which is a new member of self-reduction system.An effective synthesis strategy is proposed to optimize its photoluminescent performances.Combined with X-ray photoelectron spectroscopy and X-ray absorption fine structure spectroscopy,oxygen vacancy defects introduced by Mn doping are proved to play an important role in the transition of Mn^(4+)→Mn^(2+).Thermoluminescence analysis reveals that the distribution of trap levels,especially the deep ones,is effectively regulated by the controllable crystallization and significantly affect the thermal stability of phosphors.Then a defect-assisted model is proposed to address the inner mechanism of the phenomenon.The carriers trapped by deep trap levels can be released under the high-temperature stimulus,which return back to the luminescent centers and participate in the radiative recombination to improve thermal stability.This study provides a new crystallographic idea and theoretical support for obtaining luminescent materials with high thermal stability. 展开更多
关键词 photoluminescence lattice defects self-reduction thermal stability
在线阅读 下载PDF
上一页 1 下一页 到第
使用帮助 返回顶部