4.7 Article

An efficient far-red emission Sr2InSbO6:Mn4+, M (M = Li+, Na+, and K+) phosphors for plant cultivation LEDs

Journal

JOURNAL OF THE AMERICAN CERAMIC SOCIETY
Volume 105, Issue 2, Pages 1300-1317

Publisher

WILEY
DOI: 10.1111/jace.18115

Keywords

luminescence; phosphor; plant cultivation LEDs; Sr2InSbO6; Mn4+

Funding

  1. Chinese Universities Scientific Fund [2452019076, 2452020017]
  2. Undergraduate Innovation Fund of Northwest A&FUniversity, China [S202010712006, S202010712093, S202010712314]
  3. National Natural Science Foundation of China [11804265]
  4. Natural Science Foundation of Shaanxi Province [2020JQ-656]

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Efficient far-red light phosphors based on Mn4+-doped inorganic luminescence materials were synthesized by codoping alkali metal ions (Li+, Na+, and K+). Optimization of doping concentration and sintering temperature improved luminescent intensity, with high internal quantum efficiencies achieved. These phosphors show promise for use in plant cultivation LEDs due to their excellent optical stability and long lifetime.
High-efficiency and far-red light phosphors based on Mn4+-doped inorganic luminescence materials are beneficial to plant cultivation. However, Mn4+-doped oxide phosphors have a common problem of low quantum efficiency. Alkali metal ion codoping can effectively improve the luminescence properties of Mn4+-activated oxide phosphors. Herein, a series of Sr2InSbO6:Mn4+, M (SISO:Mn4+, M) (M = Li+, Na+, and K+) far-red-emitting phosphors codoped alkali metal ions were first synthesized. Density functional theory calculation indicated that SISO is a kind of indirect bandgap material with a bandgap of similar to 1.60 eV. The SISO:Mn4+ samples showed a far-red light at 698 nm upon 365 nm, which perfectly matched the absorption spectrum of the far-red-phytochrome (Pfr) of plants. The doping concentration of the SISO:Mn4+ samples was optimized to be 0.006 mol. The concentration quenching mechanism was defined as dipole-dipole interaction by combining the Dexter theory and the Inokuti-Hirayama model. Optimizing the sintering temperature and codoped with alkali metal ions (Li+, Na+, and K+) could improve the luminescent intensity of SISO:Mn4+. The optimum sintering temperature was 1300 degrees C. The internal quantum efficiencies of SISO:0.006Mn(4+) and SISO:0.006Mn(4+), 0.006Li(+) phosphors are 22.67% and 60.56%, respectively. SISO:Mn4+, Li+ phosphors-based plant growth light-emitting diodes (LEDs) demonstrate excellent optical stability and long lifetime. Thus, these phosphors are promising candidates for plant cultivation LEDs.

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