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Synthesis, Characterization, thermo- And Photoluminescence Properties of Bi3+ co-doped Gd2O3:Eu3+ Nanophosphors

机译:Bi3 +共掺杂Gd2O3:Eu3 +纳米荧光粉的合成,表征,热和光致发光特性

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摘要

Gd2O3:Eu3+ (4 mol%) co-doped with Bi3+ (Bi = 0, 1, 3, 5, 7, 9 and 11 mol%) ions were synthesized by a low-temperature solution combustion method. The powders were calcined at 800°C and were characterized by powder X-ray diffraction (PXRD), transmission electron microscopy (TEM), Fourier transform infrared and UV-Vis spectroscopy. The PXRD profiles confirm that the calcined products were in monoclinic with little cubic phases. The particle sizes were estimated using Scherrer''s method and Williamson-Hall plots and are found to be in the ranges 40-60 nm and 30-80 nm, respectively. The results are in good agreement with TEM results. The photoluminescence spectra of the synthesized phosphors excited with 230 nm show emission peaks at ~590, 612 and 625 nm, which are due to the transitions 5D0?7F0, 5D0?7F2 and 5D0?7F3 of Eu3+, respectively. It is observed that a significant quenching of Eu3+ emission was observed under 230 nm excitation when Bi3+ was co-doped. On the other hand, upon 350 nm excitation, the luminescent intensity of Eu3+ ions was enhanced by incorporation of Bi3+ (5 mol%) ions. The introduction of Bi3+ ions broadened the excitation band of Eu3+ of which a new strong band occurred ranging from 320 to 380 nm. This has been attributed to the 6s2?6s6p transition of Bi3+ ions, implying a very efficient energy transfer from Bi3+ ions to Eu3+ ions. The gamma radiation response of Gd2O3:Eu3+ exhibited a dosimetrically useful glow peak at 380°C. Using thermoluminescence glow peaks, the trap parameters have been evaluated and discussed. The observed emission characteristics and energy transfer indicate that Gd2O3:Eu3+, Bi3+ phosphors have promising applications in solid-state lighting.
机译:通过低温溶液燃烧法合成了与Bi3 +(Bi = 0、1、3、5、7、9和11 mol%)离子共掺杂的Gd2O3:Eu3 +(4 mol%)。粉末在800°C下煅烧,并通过粉末X射线衍射(PXRD),透射电子显微镜(TEM),傅立叶变换红外光谱和UV-Vis光谱进行表征。 PXRD图谱证实了煅烧产物是单斜晶且几乎没有立方相。使用Scherrer方法和Williamson-Hall图估计颗粒尺寸,发现其分别在40-60nm和30-80nm范围内。结果与TEM结果非常吻合。用230 nm激发的合成磷光体的光致发光光谱在〜590、612和625 nm处显示发射峰,这分别是由于Eu3 +的跃迁5D0→7F0、5D0→7F2和5D0→7F3引起的。观察到当共掺杂Bi 3+时,在230nm激发下观察到Eu 3+发射的显着猝灭。另一方面,在350nm激发下,通过掺入Bi 3+(5mol%)离子增强了Eu 3+离子的发光强度。 Bi3 +离子的引入拓宽了Eu3 +的激发带,其中出现了一个新的强带,范围为320至380 nm。这归因于Bi3 +离子的6s2→6s6p跃迁,这意味着从Bi3 +离子到Eu3 +离子的能量转移非常有效。 Gd2O3:Eu3 +的伽马辐射响应在380°C时显示出对剂量有用的辉光峰。使用热致发光辉光峰,已经对陷阱参数进行了评估和讨论。观察到的发射特性和能量转移表明,Gd2O3:Eu3 +,Bi3 +荧光粉在固态照明中具有广阔的应用前景。

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