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article · Journal of Radiation Research and Applied Sciences

Design and characterization of BaO-enriched borophosphate glasses for advanced gamma and neutron radiation shielding applications

20253 citationsOpen accessFuture University in Egypt

Abstract

Magnesium borophosphate glass composites with compositions x BaO–30MgO–10P 2 O 5 –(50– x )B 2 O 3 –10Na 2 O ( x = 0, 1, 3, 10, 15, 20, 35 mol%) were synthesized via the melt-quenching method and evaluated for gamma and neutron radiation shielding. X-ray diffraction confirmed their amorphous nature, while density increased from 2.797 g cm −3 ( x = 0) to 3.938 g cm −3 ( x = 35) with BaO addition, accompanied by a reduction in molar volume. Gamma-ray attenuation studies over 0.015–15 MeV revealed that increasing BaO content enhanced the mass attenuation coefficient (μ m ) and effective atomic number (Z e ff), with the 35 mol% BaO sample achieving the highest Z e ff (15.34) and lowest half-value layer (HVL) at all energies. At 0.662 MeV, μ m reached 0.0769 cm 2 g −1 for x = 35, comparable to or exceeding values for barite concrete and similar glass systems. Exposure build-up factor (EBF) values decreased consistently with BaO enrichment, indicating improved photon shielding. For neutron interactions, the slow neutron cross-section (Σ s ) decreased from 0.0646 cm −1 ( x = 0) to 0.0248 cm −1 ( x = 20) due to reduced boron content, while the fast neutron removal cross-section (Σᵣ) varied slightly from 0.1144 cm −1 to 0.1012 cm −1 . The trade-off in slow neutron attenuation is offset by the significant improvement in gamma-ray and fast neutron shielding. These results indicate that BaO-doped magnesium borophosphate glasses combine high gamma attenuation efficiency, structural compactness, and stable fast neutron performance, making them promising candidates for advanced medical, nuclear, and industrial radiation shielding applications.

Research topics

  • Radiation Shielding Materials Analysis
  • Nuclear materials and radiation effects
  • Glass properties and applications

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DOI: 10.1016/j.jrras.2025.101899

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