Luminescence Properties and Temperature Characteristics of Er3+/Yb3+ Co-doped Ca0.5Gd(WO4)2 Phosphor

被引:0
|
作者
Yu X. [1 ]
Li H. [1 ]
Gao B. [1 ]
Jiang Y. [1 ]
Li X. [1 ]
Zheng R. [1 ]
Wu H. [1 ]
Song Z. [1 ]
Fan J. [1 ]
Zhao P. [1 ]
机构
[1] School of Materials Science and Engineering, Chang’an University, Xi’an
来源
Cailiao Daobao/Materials Reports | 2022年 / 36卷 / 18期
基金
中国博士后科学基金; 中国国家自然科学基金;
关键词
fluorescence intensity ratio; near infrared; temperature sensing; tungstate; up-conversion;
D O I
10.11896/cldb.21050128
中图分类号
学科分类号
摘要
Up-conversion luminescent materials have been applied in non-contact optical temperature sensing technology due to their unique thermal sensitivity characteristics. Ca0.5Gd(WO4)2, with good thermal stability and optical properties, is suitable for the preparation of temperature-sensitive sensors. In this work, the Er3+/Yb3+ co-doped Ca0.5 Gd (WO4)2 phosphors were successfully prepared by high-temperature solid-phase method, and the influences of different Yb3+ doping concentrations on the phase structure, morphology and luminescence properties of the samples were studied. With the increase of Yb3+ doping concentration, the up-conversion and near-infrared luminescence intensity of Ca0.5 - Gd(WO4)2 : Er3+/Yb3+ sample first increased and then decreased, and achieved a maximum value when the Yb3+ doping concentration is 10 mol% . According to the relationship between pump power and luminescence intensity, it can be concluded that the up-conversion luminescence of Er3+ is a two-photon absorption process. In addition, the up-conversion luminescence of Ca0.5 Gd(WO4)2 : 0.5% Er3+/10% Yb3+ was measured in the temperature range of 313—573 K, and it was found that the relative sensitivity reached the maximum value of 0.0142 K-1 at 548 K. In conclusion, the Ca0.5 Gd(WO4)2 : Er3+/Yb3+ phosphor has potential application value in the field of optoelectronic materials, especially in non-contact optical temperature sensors. © 2022 Cailiao Daobaoshe/ Materials Review. All rights reserved.
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共 41 条
  • [1] Zhao Q L, Bian J P, Yang Q H, Et al., Materials Reports A: Review Papers, 33, 2, (2019)
  • [2] Yu X C, Li H J, Li X J, Et al., Journal of Materials Science: Materials in Electronics, 32, (2021)
  • [3] Wang T W, Chen H J, Zhang R, Et al., Chinese Journal of Inorganic Chemistry, 34, 6, (2018)
  • [4] Yue D, Li Q, Lu W, Et al., Journal of Materials Chemistry C, 3, (2015)
  • [5] Yu X C, Zhang D D, Li Z, Et al., Materials Reports B: Research Papers, 31, 4, (2017)
  • [6] Singh S K, Singh A K, Kumar D, Et al., Applied Physics B, 98, (2010)
  • [7] Du P, Huang X, Yu J., Inorganic Chemistry Frontiers, 4, (2017)
  • [8] Dong B, Cao B, He Y, Et al., Advanced Materials, 24, (2012)
  • [9] Liu J, Zou Z, Shi F, Et al., Journal of Alloys and Compounds, 854, (2021)
  • [10] Mazierski P, Roy J K, Mikolajczyk A, Et al., Applied Surface Science, 536, (2021)