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The Influence of Titanium Dioxide on Silicate-Based Glasses: An Evaluation of the Mechanical and Radiation Shielding Properties

The mechanical and radiation shielding features were reported for a quaternary Na2O-CaO-SiO2-TiO2 glass system used in radiation protection. The fundamentals of the Makishima–Mazinize model were applied to evaluate the elastic moduli of the glass samples. The elastic moduli, dissociation energy, and...

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Published in:Materials 2021-06, Vol.14 (12), p.3414
Main Authors: Albarzan, Badriah, Hanfi, Mohamed Y., Almuqrin, Aljawhara H., Sayyed, M. I., Alsafi, Haneen M., Mahmoud, K. A.
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cited_by cdi_FETCH-LOGICAL-c313t-3dc200824a26687702e76ec647e99bd27585a1082d71419912598225fe1caf523
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container_title Materials
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creator Albarzan, Badriah
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Almuqrin, Aljawhara H.
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Alsafi, Haneen M.
Mahmoud, K. A.
description The mechanical and radiation shielding features were reported for a quaternary Na2O-CaO-SiO2-TiO2 glass system used in radiation protection. The fundamentals of the Makishima–Mazinize model were applied to evaluate the elastic moduli of the glass samples. The elastic moduli, dissociation energy, and packing density increased as TiO2 increased. The glasses’ dissociation energy increased from 62.82 to 65.33 kJ/cm3, while the packing factor slightly increased between 12.97 and 13.00 as the TiO2 content increased. The MCNP-5 code was used to evaluate the gamma-ray shielding properties. The best linear attenuation coefficient was achieved for glass samples with a TiO2 content of 9 mol%: the coefficient decreased from 5.20 to 0.14 cm−1 as the photon energy increased from 0.015 to 15 MeV.
doi_str_mv 10.3390/ma14123414
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subjects Attenuation coefficients
Energy of dissociation
Free energy
Gamma rays
Geometry
Glass
Heat
Heat of formation
Mechanical properties
Modulus of elasticity
Monte Carlo simulation
Packing density
Radiation
Radiation protection
Radiation shielding
Silicon dioxide
Software
Titanium dioxide
title The Influence of Titanium Dioxide on Silicate-Based Glasses: An Evaluation of the Mechanical and Radiation Shielding Properties
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