首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Yb3+/Er3+ co-doped Lu2TeO6 nanophosphors: Hydrothermal synthesis, upconversion luminescence and highly sensitive temperature sensing performance
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Yb3+/Er3+ co-doped Lu2TeO6 nanophosphors: Hydrothermal synthesis, upconversion luminescence and highly sensitive temperature sensing performance

机译:YB3 + / ER3 +共掺杂LU2TO6纳米磷:水热合成,上变发光和高敏感的温度感测性能

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摘要

Upconversion (UC) nanophosphors of Lu2TeO6:Yb3+/Er3+ as temperature sensing material have been successfully synthesized via hydrothermal method followed by a subsequent heat treatment process. The phase and micrographs of the as-prepared phosphors were characterized by XRD, SEM, and TEM. Results indicate that the phosphors of hexagonal Lu2TeO6:Yb3+/Er3+, formed after heat-treatment at 800 degrees C for 5 h, consist of rice-like nanoparticles with size mostly distributed less than 200 nm in length. Under the 980-nm NIR excitation, the tellurite nanophosphors exhibit strong green and red UC emissions. The optimum Yb3+ and Er3+ concentrations for UC luminescence are determined to be 10% and 1%, respectively. The possible energy transfer mechanism implicated in the nanophosphors is discussed based on the pump power dependence of UC emissions. Furthermore, temperature sensing ability of Lu2TeO6:Yb3+/Er3+ (10/1) is investigated by employing the temperature dependent fluorescence intensity ratio (FIR) of two emission bands (H-2-(11/2)/S-4(3/2) - I-4(15/2)) of Er3+ ion. The maximum sensitivity achieved in this developed material is as high as 0.0103 K-1 at 623 K. This work provides a new qualified UC nanomaterial for application in optical remote temperature sensing. (C) 2018 Elsevier B.V. All rights reserved.
机译:Lu2teo6:Yb3 + / Er3 +的上变化(UC)纳米磷将作为温度传感材料成功通过水热法合成,然后进行了随后的热处理过程。通过XRD,SEM和TEM表征了制备的磷光体的相位和显微照片。结果表明,在800℃下的热处理5小时后形成的六边形Lu2teO6:Yb3 + / Er3 +的磷光体由大小分布在长度小于200nm的水稻纳米粒子。在980纳米的突发激发下,碲酸盐纳米膦表现出强大的绿色和红色的UC排放。用于UC发光的最佳YB3 +和ER3 +浓度分别为10%和1%。基于UC排放的泵功率依赖性讨论了涉及在纳米级磷的可能的能量转移机制。此外,通过采用两个发射带的温度依赖性荧光强度比(H-2-(11/2)/ S-4(3 /)来研究Lu2TeO6:Yb3 + / Er3 +(10/1)的温度感测能力。(H-2-(11/2)(3 / 2) - & I-4(15/2))ER3 +离子。在该发达的材料中实现的最大灵敏度在623K处高达0.0103 k-1。该工作为在光学远程温度传感中应用了一种新的合格UC纳米材料。 (c)2018年elestvier b.v.保留所有权利。

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