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Bi3+/Mn4+ co-doped dual-emission phosphors for potential plant lighting

  • Sheng Wu
  • , Quan Liu
  • , Mikhail G. Brik
  • , Puxian Xiong*
  • , Dong Wang
  • , Guoxing Zhang
  • , Yan Chen*
  • *Corresponding author for this work
  • Wuyi University
  • Chongqing University of Posts and Telecommunications
  • University of Tartu
  • Jan Dlugosz University in Czestochowa
  • Academy of Romanian Scientists
  • South China University of Technology

Research output: Contribution to journalArticlepeer-review

42 Citations (Scopus)

Abstract

Developing environment-friendly dual-emission phosphors of both blue–cyan and deep-red lights is desirable for the utilized indoor plant lighting research. Notably, the naked 6s and 6p Bi3+ ions are sensitive to the lattice sites, which emit from Ultraviolet (UV) to red lights in various crystal compounds. Meanwhile, the 2E → 4A2g transition of Mn4+ ions promises its deep-red light emissions, which satisfies the demand for specific wavelength lights for plants growth. Hence, a Bi3+/Mn4+ co-doped Sr2LaGaO5: Bi3+, Mn4+ (SLGO:Bi3+:Mn4+) phosphor was finally synthesized. The phase, micromorphology and luminescent properties were systematically evaluated. Upon excitation at 350 nm light, dual emissions of both blue–cyan (470 nm) and deep-red (718 nm) lights were observed. Besides, due to the pronounced photoluminescence (PL) spectral overlap between Bi3+ and Mn4+ ions, a potential energy transfer process from Bi3+ to Mn4+ ions was confirmed. The relative PL intensities between Bi3+ and Mn4+ ions can be tuned just by adjusting the Mn4+ ion concentration. Besides, Li+ co-doping has been evidenced to improve the deep-red emissions (718 nm) of SLGO:0.005Mn4+ due to charge compensation and rationally designed lattice distortion, together with the improved thermal stability. Finally, the emissions of SLGO:Bi3+, Mn4+, Li+ phosphor suit properly with the absorption of the four fundamental pigments for plant growth, indicating that the prepared phosphorescent materials may have a prospect in plant light-emitting diodes lighting.

Original languageEnglish
Pages (from-to)5793-5806
Number of pages14
JournalJournal of the American Ceramic Society
Volume105
Issue number9
DOIs
Publication statusPublished - Sept 2022
Externally publishedYes

Keywords

  • Bi
  • dual-emission phosphor
  • LED
  • Mn
  • plant lighting

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