Host–Dopant Engineering of Ce 4+ ‐Dominant Y 3 (Al,Ga) 5 O 12 :Ce,Mg Scintillators for High‐Performance X‐Ray Imaging

ABSTRACT Fast scintillators are essential for advanced X‐ray imaging and time‐of‐flight techniques. Although stabilizing Ce 4+ ions in garnet hosts is an effective strategy for suppressing the afterglow and accelerating scintillation, it often introduces quenching pathways that reduce the light yield. This study demonstrates that synergistic host‐dopant engineering in Mg 2+ co‐doped Y 3 (Al,Ga) 5 O 12 :Ce enables controlled Ce 4+ ‐ion stabilization and reveals a strong Ga‐dependent efficiency of Ce 3+ to Ce 4+ conversion. The X‐ray absorption near edge structure spectroscopy results indicate Ce 4+ fractions of 64% and 25% in Y 3 Al 3 Ga 2 O 12 :Ce,Mg and Y 3 Al 2 Ga 3 O 12 :Ce,Mg, respectively. Moreover, vacuum–UV spectroscopy demonstrates that Ce 4+ ions strongly suppress trap‐mediated energy transfer to the Ce 3+ fraction, indicating a redistribution of carrier capture away from defect‐related pathways. This valence state control yields an accelerated scintillation response (30–50 ns), representing a 7.1‐ and 3.6‐fold increase in light yield for Y 3 Al 3 Ga 2 O 12 and Y 3 Al 2 Ga 3 O 12 respectively, and > 10 2 reduction in the afterglow. The X‐ray imaging of biological specimens and electronic components demonstrates an improvement in spatial resolution relative to a standard Lu 3 Al 5 O 12 :Ce scintillator. These results establish Ce charge‐state engineering as a composition‐sensitive design principle for achieving superior garnet scintillators with both fast response and high light output.

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Publication Details

Journal
Laser & Photonics Review
Published
2026-10-03
DOI
https://doi.org/10.1002/lpor.71959
Primary Topic
Radiation Detection and Scintillator Technologies
Type
article
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article

Host–Dopant Engineering of Ce 4+ ‐Dominant Y 3 (Al,Ga) 5 O 12 :Ce,Mg Scintillators for High‐Performance X‐Ray Imaging

Vladimir A. Pankratov, Nadiya Zhutova, Kohei Nakanishi, Vladimír Babin et al.
Laser & Photonics Review
Radiation Detection and Scintillator Technologies
article

Host–Dopant Engineering of Ce 4+ ‐Dominant Y 3 (Al,Ga) 5 O 12 :Ce,Mg Scintillators for High‐Performance X‐Ray Imaging

Vladimir A. Pankratov, Nadiya Zhutova, Kohei Nakanishi, Vladimír Babin, Martin Nikl, Karol Bartosiewicz, Kei Kamada, A. Yoshikawa, Yevheniia Smortsova, Rikito Murakami, Yuui Yokota, Liudmila Gushchina, Alena Beitlerová, Satoshi Ishizawa, Hisato Suezumi, Masao Yoshino
article en

Abstract

ABSTRACT Fast scintillators are essential for advanced X‐ray imaging and time‐of‐flight techniques. Although stabilizing Ce 4+ ions in garnet hosts is an effective strategy for suppressing the afterglow and accelerating scintillation, it often introduces quenching pathways that reduce the light yield. This study demonstrates that synergistic host‐dopant engineering in Mg 2+ co‐doped Y 3 (Al,Ga) 5 O 12 :Ce enables controlled Ce 4+ ‐ion stabilization and reveals a strong Ga‐dependent efficiency of Ce 3+ to Ce 4+ conversion. The X‐ray absorption near edge structure spectroscopy results indicate Ce 4+ fractions of 64% and 25% in Y 3 Al 3 Ga 2 O 12 :Ce,Mg and Y 3 Al 2 Ga 3 O 12 :Ce,Mg, respectively. Moreover, vacuum–UV spectroscopy demonstrates that Ce 4+ ions strongly suppress trap‐mediated energy transfer to the Ce 3+ fraction, indicating a redistribution of carrier capture away from defect‐related pathways. This valence state control yields an accelerated scintillation response (30–50 ns), representing a 7.1‐ and 3.6‐fold increase in light yield for Y 3 Al 3 Ga 2 O 12 and Y 3 Al 2 Ga 3 O 12 respectively, and > 10 2 reduction in the afterglow. The X‐ray imaging of biological specimens and electronic components demonstrates an improvement in spatial resolution relative to a standard Lu 3 Al 5 O 12 :Ce scintillator. These results establish Ce charge‐state engineering as a composition‐sensitive design principle for achieving superior garnet scintillators with both fast response and high light output.

Laser & Photonics Review
Tohoku University (JP), Helmholtz-Zentrum Dresden-Rossendorf (DE), Deutsches Elektronen-Synchrotron DESY (DE), FZU ‒ Institute of Physics of the Academy of Sciences of the Czech Republic (CZ), Institute for Materials Research, Tohoku University, Institute of Solid State Physics, UL (LV), C&A Corporation (Japan) (JP), Nagoya University (JP)
Openalex Percentile: Top 12%
Radiation Detection and Scintillator Technologies
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