JOURNAL ARTICLE

Persistent luminescence from trivalent rare earth ions doped lithium strontium silicate under x-ray excitation

Abstract

Long afterglow luminescence (LAL) phosphors hold potential for diverse applications. However, too many factors make it impossible to obtain a general afterglow mechanism, which hinders the exploration of the novel afterglow phosphors. Here, we take trivalent rare earth (RE3+) doped Li2SrSiO4 as an example for research, use X-rays as the excitation source to ensure host-band charging method regardless of the band gap and use RE3+ ions as the luminescent centers achieving the stability of emission wavelength in different hosts. The data results indicate that Ce, Pr, Tb, Dy, Sm, and Tm, which are easily variable in valence, exhibit afterglow emission, while Er, Nd, and Ho, which are not easily variable in valence, do not exhibit afterglow emission. A general afterglow mechanism based on the afterglow properties of Li2SrSiO4:RE3+ was proposed, in which the electrons and holes were generated under X-ray excitation formed excitons, subsequently bound by RE3+ where the ability of RE3+ ions to bind excitons is determined by their valence change trend.

Keywords:
Afterglow Luminescence Phosphor Valence (chemistry) Ion Exciton Doping Excitation Photoluminescence Ternary operation Atomic physics Strontium Analytical Chemistry (journal) Materials science Chemistry Physics Optoelectronics Condensed matter physics

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Topics

Luminescence Properties of Advanced Materials
Physical Sciences →  Materials Science →  Materials Chemistry
Radiation Detection and Scintillator Technologies
Physical Sciences →  Physics and Astronomy →  Radiation
Luminescence and Fluorescent Materials
Physical Sciences →  Materials Science →  Materials Chemistry

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