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May 14, 2026Materials0 citationsOpen Access

Development and Performance Assessment of Single- and Double-Layer TbAG:Ce and YAG:Ce Composite Scintillators on GAGG:Ce Substrates for Optimized α–γ Discrimination and Pulse-Shape Analysis

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ABAbdellah BachiriASAgnieszka Syntfeld-KażuchVGVitalii Gorbenko

Key Points

  • This work aims to develop and evaluate composite scintillators for improved α–γ discrimination in radiation detection.
  • Fabrication of single- and double-film composite scintillators using liquid-phase epitaxy on GAGG:Ce substrates.
  • Characterization of scintillation properties and pulse-shape discrimination using γ-ray sources. Optimization of integration gates for performance assessment.
  • Maximum figures of merit (FOM) of 1.4 for GAGG:Ce SC substrate, 1.9 for single-film composite, and 5.0 for double-film composite.
  • Two-dimensional PSD density maps show highest separation for α and γ events in double-film composite.
  • Enhanced temporal separation and increased light yields indicate better performance of LPE-grown composites.

Abstract

In this work, we report the fabrication and characterization of single-film and double-film composite epitaxial garnet structures based on single-crystalline films (SCFs) and bulk single-crystal (SC) scintillators for enhanced α–γ discrimination in mixed radiation fields. These composite scintillators consist of TbAG:Ce and YAG:Ce SCFs grown by liquid-phase epitaxy (LPE) on Czochralski-grown Gd3Ga2.5Al2.5O12 (GAGG:Ce) bulk SC substrates. Single- and double-film architectures were designed to optimize the energy absorption and pulse-shape discrimination (PSD) performance for low-penetrating α-particles and high-energy γ-rays. Energy calibration was performed using different γ-ray sources (57Co, 51Cr, and 137Cs), enabling the conversion of detector signals to a calibrated electron-equivalent energy scale (keVee). Integration gates were systematically optimized, yielding maximum figures of merit (FOM) of 1.4 for the GAGG:Ce SC substrate, 1.9 for the single-film composite, and 5.0 for the double-film composite, demonstrating a progressive improvement in α–γ discrimination with increasing structural complexity. Two-dimensional PSD density maps reveal well-separated α and γ events, with the highest separation observed for the double-film composite. These results indicate that the engineering of LPE-grown composites provides tunable scintillation decay profiles, enhanced temporal separation, and increased light yields, making them promising candidates for applications such as mixed radiation field detection, dosimetry, and radiation monitoring.

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Cite This Study

Bachiri et al. (2026) studied this question.

synapsesocial.com/papers/6a0566fba550a87e60a1eef8https://doi.org/10.3390/ma19102001
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