Effect of composition and impurities on the phosphorescence of Green-Emitting alkaline earth aluminate phosphor

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Abstract

Recent improvements to SrAl2O4:Eu2+, Dy3+ phosphors have enabled the use of luminescent hosts with a stable crystal structure and high physical and chemical stability, thus overcoming the bottleneck in the applicability of ZnS:Cu phosphors. However, enhancement of afterglow lifetime and brightness in SrAl2O4:Eu2+, Dy3+ phosphors remains a challenging task. Here, we have improved the afterglow characteristics in terms of persistence time and brightness by a systematic investigation of the composition of Eu-doped alkaline earth aluminate SrAl2O4:Eu2+, Dy3+ crystals. We found that a Dy3+/Eu2+ ratio of ∼2.4 and ∼0.935 mol Eu2+ (per mol of SrAl2O4) gave the brightest and longest emissions (11% and 9% increase for each). Doping with Si4+ also resulted in a slight increase in brightness up to ∼15%. Doping with alkali metal or alkaline earth metal significantly enhanced the phosphorescence intensity. In particular, doping with 0.005 mol Li+ (per mol of SrAl2O4) alone boosted the phosphorescence intensity to 239% of the initial value, as compared to that observed for the non-doped crystal, while doping with 0.01 mol Mg2+ and 0.005 mol Li+ (per 1 mol SrAl2O4) boosted the phosphorescence intensity up to 313% of the initial value. The results of this investigation are expected to act as a guideline for the synthesis of bright and long persistent phosphors, and facilitate the development of persistent phosphors with afterglow characteristics superior to those of conventional phosphors.

Figures

  • Fig 1. (A) Emission spectrum of strontium aluminate crystals. (B) Decay curves depending on [Dy3+]/[Eu2+]concentration. (C) Magnified views of the graph in (B). (D) Decay curves in log scale depending on [Dy3+]/[Eu2+]concentration. (E) Magnified views of the graph in (D). (F) Relative initial intensity measured at 5s (relative values where the value of control sample #1 is 1.0) depending on [Dy3+]/[Eu2+]concentration.
  • Table 1. Various nominal activator(Eu2+) and co-activator(Dy3+) compositions of the strontium aluminate crystals.
  • Table 2. Decay times of the phosphorescence from the strontium aluminate crystals doped with various [Dy3+]/[Eu2+] ratios. Decay times were calculated by a curve fitting technique based on the three exponential components(I ¼ a e tt1 þ b e tt2 þ c e tt3).
  • Fig 2. (A) Decay curves depending on Eu2+ concentration. (B) Magnified views of the graph in (A). (C) Decay curves in log scale depending on Eu2+ concentration. (D) Magnified views of the graph in (C). (E) Relative initial intensity measured at 5s (relative values where the value of control sample #1 is 1.0) depending on Eu2+ concentration.
  • Table 4. Decay times of the phosphorescence from the strontium aluminate crystals doped with various Eu2+ concentrations. Decay times were calculated by a curve fitting technique based on the three exponential components I ¼ a e tt1 þ b e tt2 þ c e tt3).
  • Table 5. Nominal compositions of the strontium aluminate crystals doped with different alkali metals.
  • Fig 3. (A) Decay curves depending on alkali metal ion doping. (B) Magnified views of the graph in (A). (C) Decay curves in log scale depending on alkali metal ion doping. (D) Magnified views of the graph in (C). (E) Relative initial intensity measured at 5s (relative values where the value of control sample #1 is 1.0) depending on alkali metal ion doping.
  • Table 6. Decay times of the phosphorescence from the strontium aluminate crystals doped with various alkali metals. Decay times were calculated by a curve fitting technique based on the three exponential components(I ¼ a e tt1 þ b e tt2 þ c e tt3).

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APA

Kim, D., Kim, H. E., & Kim, C. H. (2016). Effect of composition and impurities on the phosphorescence of Green-Emitting alkaline earth aluminate phosphor. PLoS ONE, 11(1). https://doi.org/10.1371/journal.pone.0145434

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