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September 5, 2025Small Methods0 citations

Kinetics‐Controlled Crystallization Unlocking Eu2+‐Doped Barium Silicate Glass Ceramic for Efficient X‐Ray Scintillation

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JHJia‐Qi HuangXYXiaodong YiYGYan Gao

Key Points

  • The glass ceramic achieved a remarkable light yield of 8053 photons MeV-1, demonstrating high efficiency for X-ray scintillation.
  • It also showcased an ultra-low detectable X-ray dose rate of 115.6 nGy s-1, emphasizing its potential in sensitive radiation detection.
  • Using kinetics-controlled in situ crystallization, high-performance Ba2SiO4:Eu2+ crystals were successfully formed within the glass matrix.
  • This work highlights how precise crystallization control can lead to the development of advanced scintillators for demanding applications.

Abstract

Developing efficient scintillators is crucial for advancing radiation detection. Glass ceramics (GCs) offer promise by combining processability with enhanced luminescence, but crystallizing phases with optimal scintillation properties remain challenging. Herein, a kinetics-controlled in situ crystallization strategy is presented to selectively precipitate high-performance Ba2SiO4:Eu2+ crystals within a barium silicate glass. Molecular dynamics simulations reveal crystal-like topological configurations in the glass that facilitate Ba2SiO4 nucleation. Remarkably, the resulting GC exhibits outstanding X-ray scintillation: a high light yield of 8053 photons MeV-1 (comparable to commercial Bi4Ge3O12), an ultra-low detectable X-ray dose rate of 115.6 nGy s-1, and enables high-spatial-resolution imaging (7 lp mm-1). This performance stems from the efficient green emission (PLQY = 61.89%) of Eu2+within the confined crystalline environment and the material's excellent radiation attenuation. This work demonstrates how precise crystallization control unlocks high-performance GC scintillators for demanding radiation detection applications.

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Cite This Study

Huang et al. (2025) studied this question.

synapsesocial.com/papers/68bb49db6d6d5674bcd0024fhttps://doi.org/10.1002/smtd.202501310
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