CONDENSED MATTER: ELECTRONIC STRUCTURE, ELECTRICAL, MAGNETIC, AND OPTICAL PROPERTIES |
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Reddish Orange Long-Lasting Phosphorescence in KY3F10:Sm3+ for X-Ray or Cathode Ray Tubes |
ZHANG Jin-Su, ZHONG Hai-Yang, SUN Jia-Shi, CHENG Li-Hong, LI Xiang-Ping, CHEN Bao-Jiu** |
Department of Physics, Dalian Maritime University, Dalian 116026
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Cite this article: |
ZHANG Jin-Su, ZHONG Hai-Yang, SUN Jia-Shi et al 2012 Chin. Phys. Lett. 29 017101 |
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Abstract We report a reddish orange long-lasting phosphor of KY3F10:Sm3+ synthesized by a solid−state reaction for applications in x-ray or cathode-ray tubes. The spectrum contains a group of reddish orange emission lines originating from 4G5/2
→6HJ transitions of Sm3+. The Judd–Ofelt theory is introduced to analyze the optical transitions of the Sm3+ ions. Moreover, phosphorescence characteristics are discussed. The energy charging and release processes of the phosphor are measured and the phosphorescence decay time with 10% of initial intensity is about 40.7 seconds. The order of kinetics and the activation energy are obtained according to the thermoluminescence curve. The phosphorescence mechanism is proposed based on structural analysis and thermoluminescence glow curve measurement.
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Keywords:
71.15.Qe
71.20.Eh
71.70.Ch
78.20.Bh
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Received: 20 September 2011
Published: 07 February 2012
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PACS: |
71.15.Qe
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(Excited states: methodology)
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71.20.Eh
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(Rare earth metals and alloys)
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71.70.Ch
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(Crystal and ligand fields)
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78.20.Bh
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(Theory, models, and numerical simulation)
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