Mechanical properties, elastic moduli, transmission factors, and gamma-ray-shielding performances of Bi2O3–P2O5–B2O3–V2O5 quaternary glass system

Author:

Tekin Huseyin Ozan12,ALMisned Ghada3,Rammah Yasser Saad4,Susoy Gulfem5,Ali Fatema T.6,Sen Baykal Duygu7,Zakaly Hesham M. H.89,Issa Shams A. M.109,Ene Antoaneta11

Affiliation:

1. Department of Medical Diagnostic Imaging, College of Health Sciences, University of Sharjah , 27272 , Sharjah , United Arab Emirates

2. Istinye University, Faculty of Engineering and Natural Sciences, Computer Engineering Department , Istanbul 34396 , Turkey

3. Department of Physics, College of Science, Princess Nourah Bint Abdulrahman University , P.O. Box 84428 , Riyadh 11671 , Saudi Arabia

4. Department of Physics, Faculty of Science, Menoufia University , Shebin El-Koom 32511 , Menoufia , Egypt

5. Department of Physics, Faculty of Science, Istanbul University , Istanbul 34134 , Turkey

6. Center for Advanced Materials Research, Research Institute of Sciences and Engineering, University of Sharjah , Sharjah 27272 , United Arab Emirates

7. Istanbul Kent University, Vocational School of Health Sciences, Medical Imaging Techniques , Istanbul , 34433 , Turkey

8. Institute of Physics and Technology, Ural Federal University , 620002 Ekaterinburg , Russia

9. Physics Department, Faculty of Science, Al-Azhar University , Assiut 71524 , Egypt

10. Physics Department, Faculty of Science, University of Tabuk , Tabuk 47512 , Saudi Arabia

11. Department of Chemistry, Physics and Environment, INPOLDE Research Center, Faculty of Sciences and Environment, Dunarea de Jos University of Galati, 47 Domneasca Street , 800008 Galati , Romania

Abstract

Abstract Mechanical properties, elastic moduli, transmission factors (TFs), and gamma-ray shielding performance of quaternary glass systems with chemical composition (0.25−x)Bi2O3xB2O3−0.75(50%P2O5−50%V2O5), where x = 0.05 (S1), 0.10 (S2), 0.15 (S3), and 0.20 (S4) mol%, were comprehensively studied. The MCNPX code, Phy-X/PSD software, and the Makishima–Mackenzie model were utilized to achieve the mentioned purposes. The values of the packing density (V t) decreased from 0.634432 to 0.600611, while those of the dissociation energy (G t) increased from 51.6125 kJ/cm3 for the S1 glass sample (with Bi2O3 = 5 mol%) to 56.7525 kJ/cm3 for the S4 glass sample (with Bi2O3 = 20 mol%). This means that the mechanical properties were enhanced by increasing the Bi2O3 content in glasses. Linear (µ) and mass attenuation (µ m) coefficients for the S4 glass sample were the greatest compared to those for glass materials investigated, i.e., (µ, µ m)S1 < (µ, µ m)S2 < (µ, µ m)S3 < (µ, µ m)S4. Half- and tenth-value layers (HVL and TVL, respectively) follow the trend: (HVL, TVL)S1 > (HVL, TVL)S2 > (HVL, TVL)S3 > (HVL, TVL)S4. The effective atomic number (Z eff) of investigated glasses has the same trend as of linear and mass attenuation coefficients. Our findings indicate that increasing the amount of Bi2O3 reinforcement decreased the exposure buildup factor and energy absorption buildup factor values for all mean free path values (0.5–40 mfp). All glasses recorded the minimum TF values at a thickness of 3 cm. The findings would benefit the scientific community in determining the most appropriate additive bismuth(iii) oxide/diboron trioxide type and related glass composition to provide the shielding properties previously mentioned in terms of needs and utilization requirements, as well as the most suitable glass composition.

Publisher

Walter de Gruyter GmbH

Subject

Materials Chemistry,General Chemistry

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