article · Journal of Radiation Research and Applied Sciences
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.
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DOI: 10.1016/j.jrras.2025.101899
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