ELECTROMAGNETISM, OPTICS, ACOUSTICS, HEAT TRANSFER, CLASSICAL MECHANICS, AND FLUID DYNAMICS |
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Green long-after-glow luminescence of Tb3+ in Sr2SiO4 |
Wang Qi (王齐)a b, Qiu Jian-Bei (邱建备)a, Song Zhi-Guo (宋志国)a, Zhou Da-Cheng (周大成)a, Xu Xu-Hui (徐旭辉)a |
a College of Materials Science and Engineering, Kunming University of Science and Technology, Kunming 650093, China; b Research Center for Analysis and Measurement, Kunming University of Science and Technology, Kunming 650093, China |
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Abstract The green long-after-glow luminescence from Tb3+-doped Sr2SiO4 phosphors, which are synthesized by the high temperature solid state reaction in a reductive atmosphere, is observed in this paper. The results show that under ultraviolet excitation, the obtained phosphors produce an intense green-lighting-emission from the Tb3+, and the green-lighting long-after-glow luminescence related to Tb3+ can last half an hour after the irradiation source has been removed. Moreover, the effects of co-doping Li+, Dy3+, Er3+, Gd3+, and Yb3+ with Tb3+ on the decay properties and thermoluminescence properties are investigated to confirm the long-after-glow mechanism.
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Received: 31 July 2013
Revised: 19 November 2013
Accepted manuscript online:
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PACS:
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42.70.-a
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(Optical materials)
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Fund: Project supported by the National Natural Science Foundation of China (Grant Nos. 51272097, 61265004, and 61265007). |
Corresponding Authors:
Qiu Jian-Bei
E-mail: qiu@kmust.edu.cn
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Cite this article:
Wang Qi (王齐), Qiu Jian-Bei (邱建备), Song Zhi-Guo (宋志国), Zhou Da-Cheng (周大成), Xu Xu-Hui (徐旭辉) Green long-after-glow luminescence of Tb3+ in Sr2SiO4 2014 Chin. Phys. B 23 064211
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[1] |
Chang C, Mao D, Shen J and Feng C 2003 J. Alloys Ccompd. 348 224
|
[2] |
Wang Y, Wang Z, Zhang P, Hong Z, Fan X and Qian G 2004 Mater. Lett. 58 3308
|
[3] |
Liu Y, Lei B and Shi C 2005 Chem. Mater. 17 2108
|
[4] |
Lin L, Shi C S, Wang Z F, Zhang W P and Yin M 2008 J. Alloys Ccompd. 466 546
|
[5] |
Lin L, Yin M, Shi C S and Zhang W P 2008 J. Alloys Ccompd. 455 327
|
[6] |
Tang T P, Lee C M and Yen F C 2006 Ceram. Int. 32 665
|
[7] |
Yuan S L, Yang Y X, Fang B and Chen G R 2007 Opt. Mater. 30 535
|
[8] |
Matsuzawa T, Aoki Y, Takeuchi N and Murayama Y 1996 J. Electrochem. Soc. 143 2670
|
[9] |
Katsumata T, Nabae T, Sasajima K, Komuro S and Morikawa T 1997 J. Electrochem. Soc. 144 L243
|
[10] |
Li C and Su Q 2006 J. Alloys Compd. 408 875
|
[11] |
Zhang L, Li C and Su Q 2006 J. Rare Earths 24 196
|
[12] |
Lakshminarasimhan N and Varadaraju U V 2008 Mater. Res. Bull. 43 2946
|
[13] |
Lin Y, Tang Z, Zhang Z, Wang X and Zhang J 2001 J. Mater. Sci. Lett. 20 1505
|
[14] |
Van den Eeckhout K, Smet P F and Poelman D 2010 Materials 3 2536
|
[15] |
Rodrigues L C, Brito H F, Hölsä J, Stefani R, Felinto M C, Lastusaari M, Laamanen T and Nunes L A 2012 J. Phys. Chem. C 116 11232
|
[16] |
Jia D, Wang X J, Jia W and Yen W M 2003 J. Appl. Phys. 93 148
|
[17] |
Chen W, Wang Y, Xu X, Zeng W and Gong Y 2012 ECS Solid State Letters 1 R17
|
[18] |
Wuister S F, Donegá C M and Meijerink A 2004 Phys. Chem. Chem. Phys. 6 1633
|
[19] |
Lakshminarasimhan N andVaradaraju U V 2008 Mater. Res. Bull. 43 2946
|
[20] |
Nishioka H, Watari T, Eguchi T and Yada M 2012 J. Lumin. 132 2398
|
[21] |
Ding Y, Zhang Y, Wang Z, Li W, Mao D, Han H and Chang C 2009 J. Lumin. 129 294
|
[22] |
Wu H, Hu Y, Kang F, Chen L, Wang X, Ju G and Mu Z 2011 Mater. Res. Bull. 46 2489
|
[23] |
Kubo H, Aizawa H, Katsumata T, Komuro S and Morikawa T 2005 J. Cryst. Growth 275 e1767
|
[24] |
Zhu Y, Zheng M, Zeng J, Xiao Y and Liu Y 2009 Mater. Chem. Phys. 113 721
|
[25] |
Trojan-Piegza J, Niittykoski J, Hölsä J and Zych E 2008 Chem. Mater. 20 2252
|
[26] |
Gong Y, Wang Y, Li Y, Xu X and Zeng W 2011 Opt. Express 19 4310
|
[27] |
Lei B, Li B, Zhang H and Li W 2007 Opt. Mater. 29 1491
|
[28] |
Liu Y, Lei B and Shi C 2005 Chem. Mater. 17 2108
|
[29] |
Lei B, Li B, Wang X and Li W 2006 J. Lumin. 118 173
|
[30] |
Clabau F, Rocquefelte X, Jobic S, Deniard P, Whangbo M H, Garcia A and Le Mercier T 2005 Chem. Mater. 17 3904
|
[31] |
Yu X, Xu X H and Qiu J B 2011 Mater. Res. Bull. 46 627
|
[32] |
Ghildiyal R, Hsu C H and Lu C H 2011 Int. J. Appl. Ceram. Tec. 8 759
|
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