首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Up-conversion luminescence and optical temperature sensing properties in novel KBaY(MoO4)(3):Yb3+,Er3+ materials for temperature sensors
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Up-conversion luminescence and optical temperature sensing properties in novel KBaY(MoO4)(3):Yb3+,Er3+ materials for temperature sensors

机译:新型KBAT(MOO4)(3)(3):YB3 +,ER3 +用于温度传感器的材料的上转换发光和光学温度感测性能

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In this article, a series of KBaY(MoO4)(3):Yb3+,Er3+ (KBYMO:Yb3+,Er3+) materials with efficient upconversion (UC) luminescence properties, were synthesized using a high-temperature solid-state reaction method. Upon 975 nm NIR laser excitation, characteristic Er3+ green emission bands around 529 and 550 nm and a feeble red band around 670 nm in KBYMO:Yb3+,Er3+ were observed, which corresponded to the Er3+ transitions H-2(11/2) -> I-4(15/2), S-4(3/2) -> I-4(15/2) and F-4(9/2) -> I-4(15/2), respectively. The UC luminescence mechanism in this kind of materials was analyzed to be a two-photon process and simultaneous energy transfer from Yb3+ to Er(3+ )ions. In order to explore its potential application in optical temperature sensor, the temperature-dependent behavior of a representative KBYMO:0.50 Yb3+,0.02Er(3+) was investigated in detail. Based on fluorescent intensity ratio (FIR) technique, the calculated FIR values of I-519/I-550 in KBYMO:0.50 Yb 3 +,0.02Er 3 + (250-460 K) were utilized as the original data. Therefore, the maximum absolute sensitivity S-a and relative sensitivity S-r were determined to be 0.01306 K-1 (420 K) and 1.80% K-1 (250 K), which can be comparable with reported optical thermometric materials before, respectively. The results suggest that as-prepared KBYMO:Yb3+,Er3+ can be promising candidates applied in optical temperature sensors with good sensitivities. (C) 2019 Elsevier B.V. All rights reserved.
机译:在本文中,使用高温固态反应方法合成了一系列具有有效上变化(UC)发光性能的KBAY(MOO4)(3):YB3 +,ER3 +(KBM3 +,ER3 +)材料。在975nm Nir激光激发,特征ER3 +绿色发射带约为529和550nm,并且在KBymo中约为670nm的虚弱红色带,观察到kB3 +,ER3 +,其对应于ER3 +转变H-2(11/2) - > I-4(15/2),S-4(3/2) - > I-4(15/2)和F-4(9/2) - > I-4(15/2)。将这种材料中的UC发光机制分析为双光子过程,并从YB3 +至ER(3 +)离子同时能量转移。为了探讨其在光学温度传感器中的潜在应用,详细研究了代表性KBYMO:0.50yb3 +,0.02er(3+)的温度依赖性行为。基于荧光强度比(FIR)技术,使用KBYMO中的I-519 / I-550的计算出的FIR值:0.50 yb 3 +,0.02er 3 +(250-460 k)作为原始数据。因此,最大绝对敏感性S-A和相对敏感性S-R确定为0.01306k-1(420k)和1.80%K-1(250 k),其可以分别与报告的光学温度材料相当。结果表明,如准备的KBYMO:YB3 +,ER3 +可以承诺在光学温度传感器中应用具有良好敏感性的候选者。 (c)2019 Elsevier B.v.保留所有权利。

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