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Morphological and Gamma-Ray Attenuation Properties of High-Density Polyethylene Containing Bismuth Oxide

For extensive radiation exposure, inventing a novel radiation shielding material is a burning issue at present for the purpose of life saving. Considering this thought, in this study, by adding sundry amounts of Bi(2)O(3) into pure high-density polyethylene (HDPE), six HDPE systems were prepared to...

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Autores principales: Almuqrin, Aljawhara H., Elsafi, Mohamed, Yasmin, Sabina, Sayyed, M. I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9505765/
https://www.ncbi.nlm.nih.gov/pubmed/36143729
http://dx.doi.org/10.3390/ma15186410
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author Almuqrin, Aljawhara H.
Elsafi, Mohamed
Yasmin, Sabina
Sayyed, M. I.
author_facet Almuqrin, Aljawhara H.
Elsafi, Mohamed
Yasmin, Sabina
Sayyed, M. I.
author_sort Almuqrin, Aljawhara H.
collection PubMed
description For extensive radiation exposure, inventing a novel radiation shielding material is a burning issue at present for the purpose of life saving. Considering this thought, in this study, by adding sundry amounts of Bi(2)O(3) into pure high-density polyethylene (HDPE), six HDPE systems were prepared to evaluate the radiation shielding efficiency. These HDPE systems were HDPEBi-0 (pure HDPE), HDPEBi-10 (10 wt% Bi(2)O(3)), HDPEBi-20 (20 wt% Bi(2)O(3−)), HDPEBi-30 (30 wt% Bi(2)O(3)), HDPEBi-40 (40 wt% Bi(2)O(3)), and HDPEBi-50 (50 wt% Bi(2)O(3)). The values of the linear attenuation coefficients of the experimental results (calculated in the lab using HPGe) were compared with the theoretical results (obtained using Phy-X software) at 0.060, 0.662, 1.173, and 1.333 MeV energies. To ensure the accurateness of the experimental results, this comparison was made. It was crystal clear that for energy values from 0.06 MeV to 1.333 MeV, all the experimental values were in line with Phy-X software data, which demonstrated the research setup’s reliability. Here, the linear attenuation coefficient (LAC), and mean free path (MFP) shielding parameters were assessed. At the energy of 1.333 MeV, sample HDPEBi-0 showed an HVL value 1.7 times greater than that of HDPEBi-50, yet it was 23 times greater at 0.0595 MeV. That means that for proper radiation protection, very-low-energy HDPE systems containing 10–50% Bi(2)O(3) could be used; however, the thickness of the HDPE system must be increased according to the energy of incident radiation.
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spelling pubmed-95057652022-09-24 Morphological and Gamma-Ray Attenuation Properties of High-Density Polyethylene Containing Bismuth Oxide Almuqrin, Aljawhara H. Elsafi, Mohamed Yasmin, Sabina Sayyed, M. I. Materials (Basel) Article For extensive radiation exposure, inventing a novel radiation shielding material is a burning issue at present for the purpose of life saving. Considering this thought, in this study, by adding sundry amounts of Bi(2)O(3) into pure high-density polyethylene (HDPE), six HDPE systems were prepared to evaluate the radiation shielding efficiency. These HDPE systems were HDPEBi-0 (pure HDPE), HDPEBi-10 (10 wt% Bi(2)O(3)), HDPEBi-20 (20 wt% Bi(2)O(3−)), HDPEBi-30 (30 wt% Bi(2)O(3)), HDPEBi-40 (40 wt% Bi(2)O(3)), and HDPEBi-50 (50 wt% Bi(2)O(3)). The values of the linear attenuation coefficients of the experimental results (calculated in the lab using HPGe) were compared with the theoretical results (obtained using Phy-X software) at 0.060, 0.662, 1.173, and 1.333 MeV energies. To ensure the accurateness of the experimental results, this comparison was made. It was crystal clear that for energy values from 0.06 MeV to 1.333 MeV, all the experimental values were in line with Phy-X software data, which demonstrated the research setup’s reliability. Here, the linear attenuation coefficient (LAC), and mean free path (MFP) shielding parameters were assessed. At the energy of 1.333 MeV, sample HDPEBi-0 showed an HVL value 1.7 times greater than that of HDPEBi-50, yet it was 23 times greater at 0.0595 MeV. That means that for proper radiation protection, very-low-energy HDPE systems containing 10–50% Bi(2)O(3) could be used; however, the thickness of the HDPE system must be increased according to the energy of incident radiation. MDPI 2022-09-15 /pmc/articles/PMC9505765/ /pubmed/36143729 http://dx.doi.org/10.3390/ma15186410 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Almuqrin, Aljawhara H.
Elsafi, Mohamed
Yasmin, Sabina
Sayyed, M. I.
Morphological and Gamma-Ray Attenuation Properties of High-Density Polyethylene Containing Bismuth Oxide
title Morphological and Gamma-Ray Attenuation Properties of High-Density Polyethylene Containing Bismuth Oxide
title_full Morphological and Gamma-Ray Attenuation Properties of High-Density Polyethylene Containing Bismuth Oxide
title_fullStr Morphological and Gamma-Ray Attenuation Properties of High-Density Polyethylene Containing Bismuth Oxide
title_full_unstemmed Morphological and Gamma-Ray Attenuation Properties of High-Density Polyethylene Containing Bismuth Oxide
title_short Morphological and Gamma-Ray Attenuation Properties of High-Density Polyethylene Containing Bismuth Oxide
title_sort morphological and gamma-ray attenuation properties of high-density polyethylene containing bismuth oxide
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9505765/
https://www.ncbi.nlm.nih.gov/pubmed/36143729
http://dx.doi.org/10.3390/ma15186410
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