Correlation between Sm 3+ optical absorption and disorder build-up in swift heavy ion-irradiated CeO 2 nanoparticles

Abstract Diffuse reflectance spectroscopy was used to study undoped and Sm-doped CeO 2 nanoparticles prepared by sol–gel and ball-milling routes, and to probe radiation damage induced by swift heavy ions. Kubelka–Munk analysis of UV–vis–NIR spectra reveals nine Sm 3+ 4f–4f absorption bands within the wide O 2p–Ce 4f band gap, with intensities that increase with Sm content and remain broad owing to low local symmetry and native disorder. Under 946 MeV Au irradiation up to 5 × 10 12 cm −2 , ball-milled Sm-doped samples exhibit a systematic fluence-dependent decrease of Sm 3+ band intensities, without significant changes in bandwidth or peak positions, indicating that irradiation primarily weakens the local crystal field rather than altering site multiplicity. In parallel, the Urbach energy of the absorption edge increases, providing an optical measure of disorder build-up and yielding approximate damage cross sections consistent with electronically driven track formation. A weak Ce 3+ 4f–5 d band near 15 000 cm −1 appears in irradiated undoped CeO 2 but is absent in Sm-doped samples, in agreement with oxygen-potential pinning by charge-compensating vacancies. Overall, the data indicate that Sm 3+ absorption bands are sensitive optical probes of irradiation-induced disorder in nanocrystalline ceria and highlight the utility of rare-earth dopants for tracking radiation damage in fluorite-type oxide nanoparticles.

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Journal
Journal of Physics Condensed Matter
Published
2026-09-28
DOI
https://doi.org/10.1088/1361-648x/aea66f
Primary Topic
Nuclear materials and radiation effects
Type
article
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article

Correlation between Sm 3+ optical absorption and disorder build-up in swift heavy ion-irradiated CeO 2 nanoparticles

Maxime Guillaumet, Maik Lang, Gianguido Baldinozzi, Jean‐Marc Costantini et al.
Journal of Physics Condensed Matter
Nuclear materials and radiation effects
article

Correlation between Sm 3+ optical absorption and disorder build-up in swift heavy ion-irradiated CeO 2 nanoparticles

Maxime Guillaumet, Maik Lang, Gianguido Baldinozzi, Jean‐Marc Costantini, Abdelali Zaki, Gérald Lelong
article en

Abstract

Abstract Diffuse reflectance spectroscopy was used to study undoped and Sm-doped CeO 2 nanoparticles prepared by sol–gel and ball-milling routes, and to probe radiation damage induced by swift heavy ions. Kubelka–Munk analysis of UV–vis–NIR spectra reveals nine Sm 3+ 4f–4f absorption bands within the wide O 2p–Ce 4f band gap, with intensities that increase with Sm content and remain broad owing to low local symmetry and native disorder. Under 946 MeV Au irradiation up to 5 × 10 12 cm −2 , ball-milled Sm-doped samples exhibit a systematic fluence-dependent decrease of Sm 3+ band intensities, without significant changes in bandwidth or peak positions, indicating that irradiation primarily weakens the local crystal field rather than altering site multiplicity. In parallel, the Urbach energy of the absorption edge increases, providing an optical measure of disorder build-up and yielding approximate damage cross sections consistent with electronically driven track formation. A weak Ce 3+ 4f–5 d band near 15 000 cm −1 appears in irradiated undoped CeO 2 but is absent in Sm-doped samples, in agreement with oxygen-potential pinning by charge-compensating vacancies. Overall, the data indicate that Sm 3+ absorption bands are sensitive optical probes of irradiation-induced disorder in nanocrystalline ceria and highlight the utility of rare-earth dopants for tracking radiation damage in fluorite-type oxide nanoparticles.

Journal of Physics Condensed MatterVol. 38(39)
Centre National de la Recherche Scientifique (FR), Commissariat à l'Énergie Atomique et aux Énergies Alternatives (FR), Université Paris-Saclay (FR), CEA Paris-Saclay - Etablissement de Saclay (FR), Sorbonne Université (FR), CentraleSupélec (FR), Institut de minéralogie, de physique des matériaux et de cosmochimie (FR), Service de Recherche en Matériaux et procédés Avancés (FR), University of Tennessee at Knoxville (US)
Openalex Percentile: Top 26%
Nuclear materials and radiation effects
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