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Controllable Crystallization Optimizes Thermal Stability of A Novel Red-emitting Phosphor in Self-reduction System
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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
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氮化硅微环的共振锁定
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作者 张宇萌 文宇杰 +4 位作者 何秉秀 成家霖 申恒 闫智辉 贾晓军 《中国测试》 CAS 北大核心 2024年第12期72-77,共6页
氮化硅微环是一种被广泛应用的集成光学器件,产生用于精密测量的光频梳及用于量子信息的光量子态。其中氮化硅微环的稳定锁定是实现实际应用的关键。该文利用氮化硅微环的热自稳定性与Pound-Drever-Hall(PDH)技术,实现了氮化硅微环的共... 氮化硅微环是一种被广泛应用的集成光学器件,产生用于精密测量的光频梳及用于量子信息的光量子态。其中氮化硅微环的稳定锁定是实现实际应用的关键。该文利用氮化硅微环的热自稳定性与Pound-Drever-Hall(PDH)技术,实现了氮化硅微环的共振锁定。实验中结合高精度的激光波长调谐特性,将其稳定在微环共振波长附近,再通过PDH技术进行共振锁定。结果表明,该锁定技术在氮化硅自身的热自稳定性基础上通过精确锁定氮化硅微环,克服了扰动等影响,实现了不同功率的稳定输出。当输出功率约为38.9 mW时,对应的标准差为0.016 mW。该技术可为氮化硅微环在量子光学等领域的应用提供研究基础。 展开更多
关键词 氮化硅微环 热自稳定性 PDH技术 锁定精度
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