Effect of 231 MeV Xe-Ion Irradiation on the Structural and Luminescence Characteristics of PbWO4 Single Crystals

Undoped PbWO4 single crystals were irradiated with 231 MeV 131Xe ions at fluences of 1 × 1011 and 1 × 1013 ions cm−2 and investigated by optical absorption, Raman spectroscopy, low-temperature excitation–emission spectroscopy, photoluminescence, and room-temperature X-ray luminescence. SRIM/TRIM calculations show a strongly electronic-stopping-dominated regime (Se/Sn ≈ 258) with a projected ion range of approximately 14.36 μm. Using an effective displacement energy of 50 eV for Pb, W, and O, the calculated peak nominal ballistic damage is approximately 1.5 × 10−4 and 1.5 × 10−2 dpa at the two fluences, respectively; these values exclude electronic excitation damage. Xe irradiation produces pronounced fluence-dependent optical attenuation and shifts the operational absorption onset to lower energies. The 785 nm non-confocal, surface-focused Raman response shows no dominant PbWO4-III signature; it does not establish structural integrity throughout the Xe-modified layer. At 8 K, the excitation-action spectra broaden, and their apparent near-edge maxima shift from 4.10–4.11 eV to approximately 4.19–4.22 eV; this behavior is attributed to a combination of optical filtering, reabsorption, and excitation-dependent non-radiative competition rather than to an intrinsic shift of the electronic excitation edge. The blue host emission remains observable after irradiation, whereas long-wavelength green/yellow and red defect-related components gain relative weight. The relative integrated X-ray-luminescence output decreases strongly with increasing fluence; the stated screen-factor correction for induced absorption gives estimates of approximately 38.9% and 31.8% of the pristine value, consistent with losses beyond single-pass optical attenuation. The optical and luminescence changes are consistent with enhanced carrier trapping and non-radiative relaxation, without providing a depth-resolved structural characterization of the irradiated layer.

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Journal
Materials
Published
2026-09-30
DOI
https://doi.org/10.3390/ma19194182
Primary Topic
Radiation Detection and Scintillator Technologies
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article
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article

Effect of 231 MeV Xe-Ion Irradiation on the Structural and Luminescence Characteristics of PbWO4 Single Crystals

Abdirash T. Akilbekov, Zhakyp T. Karipbayev, Alma K. Dauletbekova, Anatoli I. Popov et al.
Materials
Radiation Detection and Scintillator Technologies
article

Effect of 231 MeV Xe-Ion Irradiation on the Structural and Luminescence Characteristics of PbWO4 Single Crystals

Abdirash T. Akilbekov, Zhakyp T. Karipbayev, Alma K. Dauletbekova, Anatoli I. Popov, Guldar Baubekova, Ainash Abdrakhmetova, Daurzhan Kenbayev
article en

Abstract

Undoped PbWO4 single crystals were irradiated with 231 MeV 131Xe ions at fluences of 1 × 1011 and 1 × 1013 ions cm−2 and investigated by optical absorption, Raman spectroscopy, low-temperature excitation–emission spectroscopy, photoluminescence, and room-temperature X-ray luminescence. SRIM/TRIM calculations show a strongly electronic-stopping-dominated regime (Se/Sn ≈ 258) with a projected ion range of approximately 14.36 μm. Using an effective displacement energy of 50 eV for Pb, W, and O, the calculated peak nominal ballistic damage is approximately 1.5 × 10−4 and 1.5 × 10−2 dpa at the two fluences, respectively; these values exclude electronic excitation damage. Xe irradiation produces pronounced fluence-dependent optical attenuation and shifts the operational absorption onset to lower energies. The 785 nm non-confocal, surface-focused Raman response shows no dominant PbWO4-III signature; it does not establish structural integrity throughout the Xe-modified layer. At 8 K, the excitation-action spectra broaden, and their apparent near-edge maxima shift from 4.10–4.11 eV to approximately 4.19–4.22 eV; this behavior is attributed to a combination of optical filtering, reabsorption, and excitation-dependent non-radiative competition rather than to an intrinsic shift of the electronic excitation edge. The blue host emission remains observable after irradiation, whereas long-wavelength green/yellow and red defect-related components gain relative weight. The relative integrated X-ray-luminescence output decreases strongly with increasing fluence; the stated screen-factor correction for induced absorption gives estimates of approximately 38.9% and 31.8% of the pristine value, consistent with losses beyond single-pass optical attenuation. The optical and luminescence changes are consistent with enhanced carrier trapping and non-radiative relaxation, without providing a depth-resolved structural characterization of the irradiated layer.

MaterialsVol. 19(19)
L. N. Gumilyov Eurasian National University (KZ), Institute of Solid State Physics, UL (LV), University of Latvia (LV), Ventspils University of Applied Sciences (LV)
Affordable and clean energy
Openalex Percentile: Top 12%
Radiation Detection and Scintillator Technologies
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