提高YAG:Ce陶瓷的光度性能:研究退火在辐射辅助合成中的作用

Q3 Engineering
Zhassulan S. Zhilgildinov
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引用次数: 0

摘要

利用高功率电子通量场成功合成了铈掺杂钇铝石榴石(YAG:Ce)陶瓷样品,该电子通量场具有1.4MeV的可观能级和23kW/cm2的功率密度。这些陶瓷是由钇、铝和铈氧化物的特殊混合物在一秒钟内形成的。在辐射通量场内辐射辅助合成陶瓷的过程从根本上偏离了当今常用的方法。所分析的衍射图案与YAG:Ce晶体记录的衍射图案在峰值位置和比例上都非常一致。此外,每个样本都一致地证明了Ia-3d的空间群对称性。本研究合成的陶瓷的发光和激发光谱与其他方法制备的YAG:Ce陶瓷和YAG:Ce-基荧光粉的发光和激发光光谱非常相似。发光带表现出高效率,并且UV带的强度比在所研究的磷光体之间变化。发现陶瓷的辐射-发光转换效率令人印象深刻,在工业磷光体SDL 4000和YAG-02中分别获得0.57和0.48的分数。还观察到,可以通过高温退火来提高样品的量子效率。高转换效率突出了概述的发光陶瓷合成方法的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ENHANCING PHOTOMETRIC PERFORMANCE OF YAG:CeCERAMICS: INVESTIGATING THE ROLE OF ANNEALING IN RADIATION-ASSISTED SYNTHESIS
Ceramic samples of cerium-doped yttrium aluminum garnet (YAG:Ce) were successfully synthesized utilizing a high-powered electron flux field with a considerable energy level of 1.4 MeV and a power density of 23 kW/cm2. The ceramics were formed in a remarkable time span of just one second from a specifically prepared mix of yttrium, aluminum, and cerium oxides. The process of radiation-assisted synthesis of ceramics within radiation flux fields fundamentally deviates from the methodologies commonly employed today. Analyzed diffraction patterns closely align with those documented for YAG:Ce crystals, both in peak position and proportion. Furthermore, every sample consistently demonstrated a space group symmetry of Ia-3d. The luminescence and excitation spectra of ceramics synthesized in this study closely resemble those of YAG:Ce ceramics produced by other methods and YAG:Ce -based phosphors. The luminescence bands exhibit high efficiency, and the intensity ratios of the UV bands vary among the studied phosphors. The ceramics' radiation-to-luminescence conversion efficiency was found to be impressive, achieving scores of 0.57 and 0.48 in the industrial phosphors SDL 4000 and YAG-02, respectively. It was also observed that an increase in quantum efficiency of the samples could be achieved via high-temperature annealing. High conversion efficiency underscores the potential of the outlined luminescent ceramics synthesis method.
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CiteScore
1.10
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