• Laser & Optoelectronics Progress
  • Vol. 57, Issue 21, 211601 (2020)
Re Ziwanguli·yantake1、2, Sun Lanlan1、2, Wang Qingling1、2, and Ai Eken·sidike1、2、*
Author Affiliations
  • 1新疆师范大学物理与电子工程学院新疆矿物发光材料及其微结构实验室, 新疆 乌鲁木齐 830054
  • 2新疆师范大学物理与电子工程学院新型光源与微纳光学实验室, 新疆 乌鲁木齐 830054
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    DOI: 10.3788/LOP57.211601 Cite this Article Set citation alerts
    Re Ziwanguli·yantake, Sun Lanlan, Wang Qingling, Ai Eken·sidike. Energy Transfer Mechanism of KAlSiO4∶Re 3+(Re=Dy/Sm) Phosphors[J]. Laser & Optoelectronics Progress, 2020, 57(21): 211601 Copy Citation Text show less

    Abstract

    A series of Dy 3+, Sm 3+ co-doped KAlSiO4 phosphor materials were prepared by the high temperature solid phase method. The experimental results show that the doping of a small amount of Dy 3+ and Sm 3+ does not change the crystal structure of KAlSiO4. When KAlSiO4∶1% Dy 3+, w% Sm 3+ is excited at the characteristic excitation wavelength of Dy 3+, there occurs a resonant non-radiative energy transfer from Dy 3+ to Sm 3+ in samples. Meanwhile, the color coordinate shift is very small and there exists a red shift at 528 nm and a blue shift at 713 nm. In contrast, when KAlSiO4∶1.5% Sm 3+, v% Dy 3+ is excited at the characteristic excitation wavelength of Sm 3+, the emission spectrum is very similar to that of KAlSiO4∶1.5% Sm 3+ and there are no characteristic emission peaks of Dy 3+. However, the luminous intensity of Sm 3+ at 651 nm is increased by 6.5 times, which indicates that there does not exist energy return from Sm 3+ to Dy 3+ and the doping of Dy 3+ promotes crystal lattice matching and greatly enhances the luminous intensity of Sm 3+. Theoretical calculations show that the maximum energy transfer efficiency from Dy 3+ to Sm 3+ reaches up to 52% and the energy transfer interaction is electric quadrupole-quadrupole interaction. The color coordinates of phosphors are all around (0.41, 0.51) and located in the yellow-green area. The internal quantum yield under 386 nm excitation gradually increases from 25.8% to 42.6%.
    Re Ziwanguli·yantake, Sun Lanlan, Wang Qingling, Ai Eken·sidike. Energy Transfer Mechanism of KAlSiO4∶Re 3+(Re=Dy/Sm) Phosphors[J]. Laser & Optoelectronics Progress, 2020, 57(21): 211601
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