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LDPE/Bismuth Oxide Nanocomposite: Preparation, Characterization and Application in X-ray Shielding

Recently developed polymer-based composites could prove useful in many applications such as in radiation shielding. In this work, the potential of a bismuth oxide (Bi(2)O(3)) nanofiller based on an LDPE polymer was developed as lead-free X-ray radiation shielding offering the benefits of lightness,...

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Autores principales: Alshahri, Saad, Alsuhybani, Mohammed, Alosime, Eid, Almurayshid, Mansour, Alrwais, Alhanouf, Alotaibi, Salha
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8471621/
https://www.ncbi.nlm.nih.gov/pubmed/34577982
http://dx.doi.org/10.3390/polym13183081
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author Alshahri, Saad
Alsuhybani, Mohammed
Alosime, Eid
Almurayshid, Mansour
Alrwais, Alhanouf
Alotaibi, Salha
author_facet Alshahri, Saad
Alsuhybani, Mohammed
Alosime, Eid
Almurayshid, Mansour
Alrwais, Alhanouf
Alotaibi, Salha
author_sort Alshahri, Saad
collection PubMed
description Recently developed polymer-based composites could prove useful in many applications such as in radiation shielding. In this work, the potential of a bismuth oxide (Bi(2)O(3)) nanofiller based on an LDPE polymer was developed as lead-free X-ray radiation shielding offering the benefits of lightness, low-cost and non-toxic compared to pure lead. Three different LDPE-based composites were prepared with varying weight percentages of Bi(2)O(3): 5%, 10% and 15%. The characterizations were extended to include structural properties, physical features, mechanical and thermal properties, and radiation shielding efficiency for the prepared nanocomposites. The results revealed that the incorporation of the Bi(2)O(3) nanofiller into an LDPE improved the density of the composites. There was also a slight increase in the tensile strength and tensile modulus. In addition, there was a clear improvement in the efficiency of the shield when fillers were added to the LDPE polymer. The LDPE + Bi(2)O(3) (15%) composite needed the lowest thickness to attenuate 50% of the incident X-rays. The LDPE + Bi(2)O(3) (15%) polymer can also block around 80% of X-rays at 47.9 keV. In real practice, a thicker shield of the proposed composite materials, or a higher percentage of the filler could be employed to safely ensure the radiation is blocked.
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spelling pubmed-84716212021-09-28 LDPE/Bismuth Oxide Nanocomposite: Preparation, Characterization and Application in X-ray Shielding Alshahri, Saad Alsuhybani, Mohammed Alosime, Eid Almurayshid, Mansour Alrwais, Alhanouf Alotaibi, Salha Polymers (Basel) Article Recently developed polymer-based composites could prove useful in many applications such as in radiation shielding. In this work, the potential of a bismuth oxide (Bi(2)O(3)) nanofiller based on an LDPE polymer was developed as lead-free X-ray radiation shielding offering the benefits of lightness, low-cost and non-toxic compared to pure lead. Three different LDPE-based composites were prepared with varying weight percentages of Bi(2)O(3): 5%, 10% and 15%. The characterizations were extended to include structural properties, physical features, mechanical and thermal properties, and radiation shielding efficiency for the prepared nanocomposites. The results revealed that the incorporation of the Bi(2)O(3) nanofiller into an LDPE improved the density of the composites. There was also a slight increase in the tensile strength and tensile modulus. In addition, there was a clear improvement in the efficiency of the shield when fillers were added to the LDPE polymer. The LDPE + Bi(2)O(3) (15%) composite needed the lowest thickness to attenuate 50% of the incident X-rays. The LDPE + Bi(2)O(3) (15%) polymer can also block around 80% of X-rays at 47.9 keV. In real practice, a thicker shield of the proposed composite materials, or a higher percentage of the filler could be employed to safely ensure the radiation is blocked. MDPI 2021-09-13 /pmc/articles/PMC8471621/ /pubmed/34577982 http://dx.doi.org/10.3390/polym13183081 Text en © 2021 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
Alshahri, Saad
Alsuhybani, Mohammed
Alosime, Eid
Almurayshid, Mansour
Alrwais, Alhanouf
Alotaibi, Salha
LDPE/Bismuth Oxide Nanocomposite: Preparation, Characterization and Application in X-ray Shielding
title LDPE/Bismuth Oxide Nanocomposite: Preparation, Characterization and Application in X-ray Shielding
title_full LDPE/Bismuth Oxide Nanocomposite: Preparation, Characterization and Application in X-ray Shielding
title_fullStr LDPE/Bismuth Oxide Nanocomposite: Preparation, Characterization and Application in X-ray Shielding
title_full_unstemmed LDPE/Bismuth Oxide Nanocomposite: Preparation, Characterization and Application in X-ray Shielding
title_short LDPE/Bismuth Oxide Nanocomposite: Preparation, Characterization and Application in X-ray Shielding
title_sort ldpe/bismuth oxide nanocomposite: preparation, characterization and application in x-ray shielding
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8471621/
https://www.ncbi.nlm.nih.gov/pubmed/34577982
http://dx.doi.org/10.3390/polym13183081
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