4.6 Article

Structure and luminescence properties of Sr9La(PO4)(5)(SiO4)F-2:Dy3+ single-component white-emitting phosphor for n-UV w-LEDs

期刊

OPTICAL MATERIALS
卷 84, 期 -, 页码 689-693

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.optmat.2018.05.040

关键词

Apatite structure; Phosphor; Luminescence properties; w-LEDs

资金

  1. National Natural Science Foundations of China [51672257]
  2. Fundamental Research Funds for the Central Universities [2652017347, 2652017335]
  3. China Scholarship Council

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A single-component white-emitting phosphor Sr9La(PO4)(5)(SiO4)F-2:Dy3+ pumped for n-UV-light emitting diodes was firstly presented by solid state method and the crystal structures, luminescence properties, especially the concentration quenching behaviors were discussed in detail. Accordingly, the quantum efficiencies as well as lifetime studies of Dy3+ in CLPGF phosphor were also carried out. The results revealed that the Sr9La(PO4)(5)(SiO4)F-2:Dy3+ phosphor could be efficiently excited in a broad wavelength ranging near ultraviolet (n-UV) regions, which matched perfectly with n-UV white light emitting diodes (w-LEDs) chips. Under the excitation at 349 nm, the phosphor exhibited three prominent emission peaks in the visible wavelength region located at 483, 578 and 670 nm, which is ascribed to the (4)F9/2(-) H-6(15/2), E-4(9)/2- H-6(13/2) and F-4(9)/2- H-6(11)/2 transitions of Dy3+, respectively. It was also proved that the dipole-dipole interactions results in the concentration quenching in Structure and luminescence properties of Sr9La(PO4)(5)(SiO4)F-2:Dy3+ single-component white-emitting phosphor for n-UV w-LEDs phosphors. Fascinatingly, when the temperature turned up to 150 degrees C, the emission intensity at 483 and 578 nm was 83.4 and 89.1% of the initial value at room temperature. Additional, the corresponding activation energy Delta E was determined to be 0.16999 and 0.17451 eV, which indicated the excellent thermal stability of the samples. All these findings demonstrated that as-prepared phosphors could act as a high-performance candidate for the application.

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