Enhancement of luminescence intensity and color purity of Mg_x Zn_(1–x) MoO_4:Eu~(3+),Bi~(3+) phosphors
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  • 英文篇名:Enhancement of luminescence intensity and color purity of Mg_x Zn_(1–x) MoO_4:Eu~(3+),Bi~(3+) phosphors
  • 作者:莫福旺 ; 陈培灿 ; 关安翔 ; 张伟 ; 周立亚
  • 英文作者:MO Fuwang;CHEN Peican;GUAN Anxiang;ZHANG Wei;ZHOU Liya;School of Chemistry and Chemical Engineering, Guangxi University;
  • 英文关键词:optical materials;;luminescence;;X-ray diffraction;;rare earths
  • 中文刊名:YXTB
  • 英文刊名:稀土学报(英文版)
  • 机构:School of Chemistry and Chemical Engineering, Guangxi University;
  • 出版日期:2015-10-15
  • 出版单位:Journal of Rare Earths
  • 年:2015
  • 期:v.33
  • 基金:Project supported by National Natural Science Foundation of China(61264003);; the Science Foundation of Guangxi Province(2015GXNSFAA139025);; Innovation Project of Guangxi Graduate Education(YCBZ2014010);; the Students Innovation and Entrepreneurship Training Program of Guangxi University(201410593101)
  • 语种:英文;
  • 页:YXTB201510008
  • 页数:8
  • CN:10
  • ISSN:11-2788/TF
  • 分类号:54-61
摘要
ZnMoO4:Eu3+ red phosphors co-doped with Mg2+ and Bi3+ were synthesized using a solid-state reaction. X-ray powder diffraction, scanning electron microscopy, and photoluminescence analysis were used for characterizing the phosphors. The introduction of Mg2+ into a Zn2+ site further enhanced the emission intensity of the 5D0→7F2 transition since the asymmetry of a Eu3+ site increased when Zn2+ was substituted by Mg2+. The co-doped Bi3+ efficiently sensitized the emission of Eu3+ and effectively extended the absorption of near-ultraviolet light with wavelengths ranging from 300 to 370 nm. The high color purity of Mg0.10Zn0.84MoO4:Eu3+ 0.05,Bi3+ 0.01 was calculated to be 91.80%. The thermal quenching temperature T d was about 387 K and the activation energy for thermal quenching was found to be about 0.31 e V for Mg0.10Zn0.84MoO4:Eu3+ 0.05,Bi3+ 0.01, respectively. Moreover, the results revealed that the energy transfer was more effective when the Zn0.95MoO4:Eu3+ 0.05 phosphors were co-doped with Mg2+ ions and Bi3+ ions than those doped only with Mg2+ ions.
        ZnMoO4:Eu3+ red phosphors co-doped with Mg2+ and Bi3+ were synthesized using a solid-state reaction. X-ray powder diffraction, scanning electron microscopy, and photoluminescence analysis were used for characterizing the phosphors. The introduction of Mg2+ into a Zn2+ site further enhanced the emission intensity of the 5D0→7F2 transition since the asymmetry of a Eu3+ site increased when Zn2+ was substituted by Mg2+. The co-doped Bi3+ efficiently sensitized the emission of Eu3+ and effectively extended the absorption of near-ultraviolet light with wavelengths ranging from 300 to 370 nm. The high color purity of Mg0.10Zn0.84MoO4:Eu3+ 0.05,Bi3+ 0.01 was calculated to be 91.80%. The thermal quenching temperature T d was about 387 K and the activation energy for thermal quenching was found to be about 0.31 e V for Mg0.10Zn0.84MoO4:Eu3+ 0.05,Bi3+ 0.01, respectively. Moreover, the results revealed that the energy transfer was more effective when the Zn0.95MoO4:Eu3+ 0.05 phosphors were co-doped with Mg2+ ions and Bi3+ ions than those doped only with Mg2+ ions.
引文
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