Thermally Stable Ce 3+ ‐Doped Glass Scintillators for High‐Temperature and Real‐Time Dynamic X‐ray Imaging

ABSTRACT Ce 3+ ‐doped glass scintillators, which exhibit desirable characteristics of high transmittance, exceptional structural stability, and ultra‐fast decay time, are compelling candidates in x‐ray imaging field. However, low x‐ray excited luminescence (XEL) and unsatisfactory thermal stability seriously hamper their advancement. Here, three synergistic strategies, including selecting oxyfluoride glass with low phonon energy, incorporating C powders as an effective reducing agent, and adding heavy elements, are proposed for designing Ce 3+ ‐doped glass scintillators with enhanced XEL and thermal stability. The reduction of Ce 4+ to Ce 3+ in oxyfluoride glass inhibits the self‐absorption of Ce 4+ in the blue‐ultraviolet range, resulting in a record‐breaking XEL intensity (192% of that of commercial Bi 4 Ge 3 O 12 (BGO)) among Ce 3+ ‐doped glass scintillators. When applied to a scintillating screen, the optimal sample exhibits high transmittance (82% at 368 nm), a low detection limit of 4.8 µGy air /s, outstanding resolution of 20 lp/mm in static imaging, and excellent dynamic x‐ray imaging capability. Notably, the XEL intensity of the designed Ce 3+ ‐doped glass scintillator at 423 K remains 76.6% of its room‐temperature value, significantly surpassing the thermal stability of reported Ce 3+ ‐doped scintillators as well as commercial BGO and CsI:Tl. This study offers novel strategies for improving XEL intensity and thermal stability of Ce 3+ ‐doped glass scintillators.

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Publication Details

Journal
Laser & Photonics Review
Published
2026-08-24
DOI
https://doi.org/10.1002/lpor.71805
Primary Topic
Radiation Detection and Scintillator Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Thermally Stable Ce 3+ ‐Doped Glass Scintillators for High‐Temperature and Real‐Time Dynamic X‐ray Imaging

Hai Guo, LianJie Li, Qiqi Su, Yuheng Mei et al.
Laser & Photonics Review
Radiation Detection and Scintillator Technologies
article

Thermally Stable Ce 3+ ‐Doped Glass Scintillators for High‐Temperature and Real‐Time Dynamic X‐ray Imaging

Hai Guo, LianJie Li, Qiqi Su, Yuheng Mei, Junyu Chen
article en

Abstract

ABSTRACT Ce 3+ ‐doped glass scintillators, which exhibit desirable characteristics of high transmittance, exceptional structural stability, and ultra‐fast decay time, are compelling candidates in x‐ray imaging field. However, low x‐ray excited luminescence (XEL) and unsatisfactory thermal stability seriously hamper their advancement. Here, three synergistic strategies, including selecting oxyfluoride glass with low phonon energy, incorporating C powders as an effective reducing agent, and adding heavy elements, are proposed for designing Ce 3+ ‐doped glass scintillators with enhanced XEL and thermal stability. The reduction of Ce 4+ to Ce 3+ in oxyfluoride glass inhibits the self‐absorption of Ce 4+ in the blue‐ultraviolet range, resulting in a record‐breaking XEL intensity (192% of that of commercial Bi 4 Ge 3 O 12 (BGO)) among Ce 3+ ‐doped glass scintillators. When applied to a scintillating screen, the optimal sample exhibits high transmittance (82% at 368 nm), a low detection limit of 4.8 µGy air /s, outstanding resolution of 20 lp/mm in static imaging, and excellent dynamic x‐ray imaging capability. Notably, the XEL intensity of the designed Ce 3+ ‐doped glass scintillator at 423 K remains 76.6% of its room‐temperature value, significantly surpassing the thermal stability of reported Ce 3+ ‐doped scintillators as well as commercial BGO and CsI:Tl. This study offers novel strategies for improving XEL intensity and thermal stability of Ce 3+ ‐doped glass scintillators.

Laser & Photonics Review
Zhejiang Normal University (CN)
National Natural Science Foundation of China
Affordable and clean energy
Openalex Percentile: Top 11%
Radiation Detection and Scintillator Technologies
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Thermally Stable Ce 3+ ‐Doped Glass Scintillators for High‐Temperature and Real‐Time Dynamic X‐ray Imaging — Hai Guo, LianJie Li, et al. · Laser & Photonics Review (2026) | TGRS Research Map | TGRS