Investigation on luminescence properties and energy transfer of Gd3+ and Sm3+-doped phosphate glass for solid-state lighting

  • Yodkantee, D.; 
  • Manmuang, N.; 
  • Wantana, N.; 
  • Kothan, S.; 
  • Yimnirun, R.; 
  • ... Kim, H. J.; 
  • 외 2명
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초록

The physical and optical properties of glasses for solid-state lighting applications are being investigated. The melt quenching procedure at 1200 degrees C was used to create the Gd3+ and Sm3+ ions using doped phosphate-based glasses. Gd2O3 and Sm2O3 concentrations increased density, according to the findings. For the alteration in the glass, the intensity of molar volume rose, indicating the establishment of a non-bridging oxygen (NBO) network. The absorption spectra migrated from H-6(5/2), the ground state, to different states with wavelengths ranging from 300 to 1700 nm. When the energy transfer from the IH model is at its greatest at 11 mol% Gd3+ con-centration, photoluminescence spectra exhibit four emission peaks ranging from (4)G(9/2) to H-6(5/2), H-6(7/2), H-6(9/2), and H-6(11/2), respectively. The maximum photoluminescence spectra intensity was 1 mol% of Sm2O3, which was compared to bismuth germanium oxide (Bi4Ge3O12; BGO) crystal at 10.33% by x-ray excitation. The color of orange emission is determined by the CIE 1931. The Judd-Ofelt (JO) parameter (Omega(lambda) (lambda = 2, 4, 6)) have been used by evaluated Judd-Ofelt theory and trend were Omega(4) > Omega(6) > Omega(2). As a result, doped phosphate base glasses with Gd3+ and Sm3+ ions have property requirements, and cost-cutting production is the best option for solid-state lighting applications.

키워드

Phosphate Glasses; Samarium doped; Gadolinium doped; Solid-state lighting; SM3+ IONS; BEHAVIOR
제목
Investigation on luminescence properties and energy transfer of Gd3+ and Sm3+-doped phosphate glass for solid-state lighting
저자
Yodkantee, D.; Manmuang, N.; Wantana, N.; Kothan, S.; Yimnirun, R.; Kim, H. J.; Prasatkhetragarn, A.; Kaewkhao, J.
DOI
10.1016/j.ijleo.2022.169854
발행일
2022-11
유형
Article
저널명
Optik
권
269