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Novel Mn 4+ -activated LiLaMgWO 6 far-red emitting phosphors: high photoluminescence efficiency, good thermal stability, and potential applications in plant cultivation LEDs.

Jia LiangLiangling SunBalaji DevakumarShaoying WangQi SunHeng GuoBin LiXiaoyong Huang
Published in: RSC advances (2018)
Double perovskite-based LiLaMgWO 6 :Mn 4+ (LLMW:Mn 4+ ) red phosphors were synthesized by traditional solid-state route under high temperature, and they showed bright far-red emission under excitation of 344 nm. The crystal structure, luminescence performance, internal quantum efficiency, fluorescence decay lifetimes, and thermal stability were investigated in detail. All samples exhibited far-red emissions around 713 nm due to the 2 E g → 4 A 2g transition of Mn 4+ under excitation of near-ultraviolet and blue light, and the optimal doping concentration of Mn 4+ was about 0.7 mol%. The CIE chromaticity coordinates of the LLMW:0.7% Mn 4+ sample were (0.7253, 0.2746), and they were located at the border of the chromaticity diagram, indicating that the phosphors had high color purity. Furthermore, the internal quantum efficiency of LLMW:0.7% Mn 4+ phosphors reached up to 69.1%, which was relatively higher than those of the reported Mn 4+ -doped red phosphors. Moreover, the sample displayed good thermal stability; the emission intensity of LLMW:0.7% Mn 4+ phosphors at 423 K was 49% of the initial value at 303 K, while the activation energy was 0.39 eV. Importantly, there was a broad spectral overlap between the emission band of LLMW:Mn 4+ phosphors and the absorption band of phytochrome P FR under near-ultraviolet light. All of these properties and phenomena illustrate that the LLMW:Mn 4+ phosphors are potential far-red phosphors for applications in plant cultivation LEDs.
Keyphrases
  • light emitting
  • energy transfer
  • room temperature
  • quantum dots
  • transition metal
  • metal organic framework
  • crystal structure
  • risk assessment
  • magnetic resonance
  • high temperature
  • human health