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Radiation shielding performance of lead-borate glasses with rare-earth oxides: a comparative analysis

  • M.I. Sayyed EMAIL logo and Aljawhara H. Almuqrin
Published/Copyright: May 6, 2025

Abstract

Lead-borate glasses with Eu, Y, La, or Sm oxides were investigated for their radiation shielding capabilities across a broad range of energies. Due to the glasses’ varying content, each sample had varying densities, with the Sm glass having the highest density and the Y glass having the least. At lower energies, the MAC values followed the Y2O3 < La2O3 < Sm2O3 < Eu2O3 order, while at higher energies the MACs are practically identical. The glasses’ LACs showed an inverse energy relationship, such as those of the Y glass which are 0.946, 0.439, and 0.293 cm−1 at 0.284, 0.511, and 0.826 MeV, respectively. The Zeff of the glasses are in the order of Eu > Sm > La > Y, which corresponds to the relative order of the sample-based additives’ atomic numbers. The RPEs of the glasses revealed the Sm glass to have slightly greater protection efficiency than the Eu glass, while increasing the thickness of the sample greatly improved the shielding effectiveness. The ratio of the reference glass’s HVL to each of a set of compared glasses’ LAC showed that the Sm glass is a viable glass for radiation shielding applications.


Corresponding author: M.I. Sayyed, Department of Physics, Faculty of Science, Isra University, Amman, Jordan, E-mail:

  1. Research ethics: The author declares that there is no conflict of interest.

  2. Informed consent: Not applicable.

  3. Author contributions: Material preparation, data collection, analysis, funding and manuscript as a whole (writing the draft manuscript and revision the final form) were prepared by the authors of the manuscript M.I Sayyed and Aljawhara H. Almuqrin.

  4. Use of Large Language Models, AI and Machine Learning Tools: None declared.

  5. Conflict of interest: The author declares that there is no conflict of interest.

  6. Research funding: The authors express their gratitude to Princess Nourah bint. Abdulrahman University Researchers Supporting Project number. (PNURSP2025R2), Princess Nourah bint Abdulrahman. University, Riyadh, Saudi Arabia.

  7. Data availability: All data generated or analyzed during this study are included in this published article.

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Received: 2025-02-17
Accepted: 2025-04-13
Published Online: 2025-05-06
Published in Print: 2025-06-26

© 2025 Walter de Gruyter GmbH, Berlin/Boston

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