Crystallite Morphology-Dependent Optical Temperature-Sensing Properties of Eu3+-Doped NaGd(WO4)2 Phosphor

被引:13
作者
Ming, Xin [1 ]
Meng, Qingyu [1 ]
Lu, Shuchen [1 ]
Sun, Wenjun [1 ]
机构
[1] Harbin Normal Univ, Key Lab Photon & Elect Bandgap Mat, Minist Educ, Sch Phys & Elect Engn, Harbin 150025, Heilongjiang, Peoples R China
关键词
Crystallite morphology; Luminescence; Rare earths; Temperature sensing; PHONON COUPLING PROPERTIES; UP-CONVERSION; LUMINESCENT PROPERTIES; PHOTOLUMINESCENCE PROPERTIES; ENERGY-TRANSFER; EMISSIONS; EU3+; FLUORESCENCE; SENSITIVITY;
D O I
10.1002/slct.201702546
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
NaGd(WO4)(2): Eu3+ phosphors by using sodium citrate (Na(3)Cit, Na3C6H5O7) as chelating agent were synthesized via hydrothermal method. The structure and morphology were characterized and analyzed by the X-ray diffraction and field emission scanning electron microscopy. Adding Na(3)Cit into the reaction solution can considerably influence the crystallite morphologies of the samples. The temperature dependent photoluminescence spectra of NaGd(WO4)(2): Eu3+ phosphors with different ratios of Cit(3-)/Re3+ have been measured. It was found that, in the NaGd(WO4)(2): Eu3+ phosphors, the optical temperature sensing can be achieved by following three temperature dependent parameters: the ratio of luminous intensity of thermally coupled energy levels (D-5(0) and D-5(1)); the emission intensities of Eu3+ 5D0-F-7(2) transition; the Huang-Rhys factor of Eu3+ 7F0-D-5(2) transition absorption. And the temperature sensing sensitivities of all three methods increased with increase of the ratios of Cit(3-)/Re3+. This is mainly due to that the number of crystal defects increases with increase of the concentration of Cit(3-), and the vibration modes and number of phonons increase, so the intensity of electron-phonon coupling increases.
引用
收藏
页码:11860 / 11867
页数:8
相关论文
共 50 条
[31]   Temperature dependence of the morphology and fluorescence of Eu3+-doped in LaPO4 nanowires [J].
Jin, Ye ;
Liu, Xueqin ;
Feng, Wenlin ;
Zhang, Feng .
ADVANCED MANUFACTURING TECHNOLOGY, PTS 1-4, 2012, 472-475 :2283-2286
[32]   Structural analysis and optical temperature sensing performance of Eu3+-doped Ba3In(PO4)3 [J].
Zhang, Guangqing ;
Molokeev, Maxim S. ;
Ma, Qianchao ;
Yang, Xuening ;
Han, Shuiquan ;
Chen, Qi ;
Zhong, Binnian ;
Ma, Bin .
CRYSTENGCOMM, 2020, 22 (35) :5809-5817
[33]   Color-tunable Eu3+ - or Sm3+-doped perovskite phosphors as optical temperature-sensing materials [J].
Chen, Qi ;
Yang, Xuening ;
Zhang, Guangqing ;
Ma, Qianchao ;
Han, Shuiquan ;
Ma, Bin .
OPTICAL MATERIALS, 2021, 111 (111)
[34]   Crystal Growth and Luminescence Properties of Pure and Pr3+-doped NaGd(WO4)2 Single Crystals [J].
Jiang, Hua ;
Rooh, Gul ;
Kim, H. J. ;
Lee, J. M. ;
Lee, Y. J. ;
Khan, Sajid ;
Kim, S. H. .
2013 IEEE NUCLEAR SCIENCE SYMPOSIUM AND MEDICAL IMAGING CONFERENCE (NSS/MIC), 2013,
[35]   Luminescence properties of Eu3+:KGd(WO4)2 nanocrystallites [J].
Pazik, R. ;
Zych, A. ;
Strek, W. .
MATERIALS CHEMISTRY AND PHYSICS, 2009, 115 (2-3) :536-540
[36]   Study on optical temperature sensing properties of Tb3+, Eu3+ co-doped CaMoO4 phosphor [J].
Li, Shidong ;
Meng, Qingyu ;
Lu, Shuchen ;
Sun, Wenjun .
JOURNAL OF LUMINESCENCE, 2018, 200 :103-110
[37]   NaGd(WO4)2:Yb3+/Er3+ phosphors: hydrothermal synthesis, optical spectroscopy and green upconverted temperature sensing behavior [J].
Liao, Jinsheng ;
Nie, Liling ;
Wang, Qi ;
Liu, Suijun ;
Wen, He-Rui ;
Wu, Jingping .
RSC ADVANCES, 2016, 6 (42) :35152-35159
[38]   Temperature dependent photoluminescence of Eu3+-doped Ca7V4O17 [J].
Bu, Yanyan ;
Yan, Xiaohong .
JOURNAL OF LUMINESCENCE, 2017, 190 :50-55
[39]   Spectroscopic and temperature sensing properties of Sm3+ in self-activated CsLu(WO4)2 phosphors [J].
Song, Mingjun ;
Wang, Jing ;
Xie, Zhi ;
Liu, Li ;
Zhao, Wang ;
Zhou, Weiwei .
JOURNAL OF RARE EARTHS, 2024, 42 (11) :2033-2042
[40]   Visible Upconversion and Magnetic Properties of NaGd(WO4)2: Er3+, Yb3+ Nanoparticles [J].
Wang, Zhaofeng ;
Li, Yezhou ;
Ji, Xiaoming ;
Zeng, Huidan ;
Ci, Zhipeng ;
Sun, Luyi .
SCIENCE OF ADVANCED MATERIALS, 2015, 7 (09) :1843-1847