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March 21, 2026Journal of Advanced Ceramics3 citationsOpen Access

Eu 2+ -actived oxyfluoride glass with highly efficient blue-cyan luminescence for X-ray imaging and white LED applications

JCJunyu ChenYMYuheng MeiHLHuihui Lin

Key Points

  • The research aims to enhance the luminescent efficiency of Eu<sup>2+</sup>-doped oxyfluoride glass for better performance in X-ray imaging and LED applications.
  • Synthesis of Eu<sup>2+</sup>-doped oxyfluoride glass using various strategies
  • Regulation of optical basicity and introduction of heavy elements
  • Addition of carbon powders as a reducing agent
  • Evaluation of scintillation and photoluminescence properties
  • Achieved X-ray excited luminescence intensity of 308% compared to Bi<sub>4</sub>Ge<sub>3</sub>O<sub>12</sub>
  • Optimal glass has over 80% transmittance at 472 nm and a detection limit of 6.0 mGy<sub>air</sub>/s
  • Imaging resolution reaches 24 lp/mm
  • External quantum efficiency for photoluminescence is 71.2% with thermal stability at high temperatures
  • Color rendering index of white LED improved to 91.8 when combined with a 400 nm chip

Abstract

Eu2+-doped glass has attracted considerable interest due to its dual functionality in X-ray imaging and white light emitting diode (LED). However, the amorphous nature of glass restricts the improvement of luminescent efficiency of Eu2+-doped glass. Here, four strategies including selecting oxyfluoride glass as host, regulating optical basicity, introducing appropriate heavy elements, and adding carbon powders as reducing agent were proposed to prepare Eu2+-doped glass with excellent X-ray excited luminescence (XEL) and efficient blue-cyan photoluminescence (PL). For scintillating performance, the optimal glass exhibits a record-breaking XEL intensity reaching 308% of that of commercial Bi4Ge3O12. Together with high transmittance (>80% at 472 nm), linear response to X-ray dose, and low detection limit (6.0 mGyair/s), the imaging resolution based on optimal glass reaches up to 24 lp/mm. For PL performance, the intense blue-cyan light of optimal glass processes high external quantum efficiency of 71.2% and excellent thermal stability (PL intensity at 423 K is 57.7% of that at room temperature). When combined with the 400 nm chip, optimal glass effectively fills cyan gap and elevates the color rendering index of white LED to 91.8. This work offers valuable guidelines and design principles for improving XEL and PL performance of Eu2+-doped glass.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69be37dd6e48c4981c677d81https://doi.org/10.26599/jac.2026.9221286
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