Eu3+/Sm3+掺杂Na2YMg2V3O12用于wled的可调谐发光和光学测温。

Yanli Du, Ying Jin, Kai Yan, Yunfei Li, Yuqi Wang, Shengda Liu, Guixia Liu, Jinxian Wang, Wensheng Yu, Xiangting Dong
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引用次数: 0

摘要

近年来,设计稀土离子掺杂的多用途发光材料已成为发展趋势。本文采用简单的高温固相反应方法合成了一系列Eu3+/Sm3+掺杂的自激活Na2YMg2V3O12 (NYMVO)荧光粉。有趣的是,在近紫外(n-UV) 365 nm激发下,由于从基质到激活剂的能量转移(ET),荧光粉的发光颜色从绿松石变为橙红色和黄绿色。根据基质与Eu3+/Sm3+的荧光强度比,描述了NYMVO:0.20Eu3+和NYMVO:0.06Sm3+荧光粉的光学测温性能。值得注意的是,NYMVO:0.20Eu3+和NYMVO:0.06Sm3+荧光粉的最大绝对灵敏度(Sa)分别为0.30 K-1和0.032 K-1。相应的,最大相对灵敏度Sr值分别为2.17% K-1和1.22% K-1。此外,基于NYMVO:0.20Eu3+和NYMVO:0.06Sm3+荧光粉的发光器件具有优异的光学性能,相关色温(CCT)分别为4552 K和4470 K,显色指数(CRI)分别为84.6和88.5。这些结果表明,制备的两种钒酸盐荧光粉在暖白光发光二极管(wled)和光学测温方面都有潜在的应用前景。
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Tunable luminescence in Eu3+/Sm3+ doped Na2YMg2V3O12 for WLEDs and optical thermometry.

In recent years, it has become a development trend to design multi-application luminescent materials with rare earth ion doping. In this work, a series of Eu3+/Sm3+ doped self-activated Na2YMg2V3O12 (NYMVO) phosphors were synthesized through a simple high-temperature solid-state reaction method. Interestingly, due to the energy transfer (ET) from the matrix to the activators, the luminescence color of the phosphors changed from turquoise to orange-red and yellow-green under near-ultraviolet (n-UV) 365 nm excitation. Based on the fluorescence intensity ratio of the matrix to Eu3+/Sm3+, the optical thermometry performances of the NYMVO:0.20Eu3+ and NYMVO:0.06Sm3+ phosphors were described. Notably, the maximum absolute sensitivity (Sa) values for NYMVO:0.20Eu3+ and NYMVO:0.06Sm3+ phosphors were 0.30 K-1 and 0.032 K-1, respectively. Correspondingly, the maximum relative sensitivity (Sr) values were 2.17 %K-1 and 1.22 %K-1, respectively. Moreover, the light-emitting devices based on NYMVO:0.20Eu3+ and NYMVO:0.06Sm3+ phosphors had excellent optical properties, with correlated color temperature (CCT) of 4552 K and 4470 K, and color-rendering index (CRI) of 84.6 and 88.5. These results suggested that the two vanadate phosphors prepared had potential applications in both warm white light-emitting diodes (WLEDs) and optical thermometry.

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