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Superiority quantitation of laser-driving in Sm3+ doped germanium tellurite glass phosphors as bio-friendly lighting sources

  • Jiaxin Yang
  • , Desheng Li
  • , Edwin Yue Bun Pun
  • , Hai Lin*
  • , Xin Zhao
  • *Corresponding author for this work
  • Dalian Polytechnic University
  • City University of Hong Kong

Research output: Contribution to journalArticlepeer-review

Abstract

Intense multi-peak red fluorescence of Sm3+ has been quantitatively characterized and the superiority of laser pumping has been verified in heavy metal germanium tellurite (HGT) glasses. The dipole-dipole interaction between Sm3+-Sm3+ ions is proved to be a dominant mechanism governing the non-radiative energy transfer. The net emission power and the net emission photon number in HGT-Sm-1.0 glass are increased by 393.61 μW and 13.26 × 1014 cps under the excitation of the 464 nm laser compared with those of the 470 nm LED pumping, and the corresponding quantum yield is as high as 17.55% which is 60% higher than that in the common LED. The environmental-friendly red emissions (590–780 nm) occupy a ratio of up to 83.3% in total released photon numbers, and the maximum luminous flux of Sm3+ reaches to 0.16 lm, exhibiting the availability of employed laser-driving approach. Moreover, the high-quality red light can be further optimized by narrow-band filter, which can intercept the residual laser fully compared with broad-band exciting sources. Efficient red fluorescence emissions and large absolute spectral parameters confirm the superiority of laser-driving on Sm3+ doped HGT glass phosphors for lighting source, which further promotes the development of bio-friendly illumination sources.

Original languageEnglish
Article number105685
JournalOptics and Laser Technology
Volume120
DOIs
StatePublished - Dec 2019
Externally publishedYes

Keywords

  • Bio-friendly lighting sources
  • Germanium tellurite glasses
  • Laser-driving
  • Sm ion
  • Superiority quantitation

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