改变氧化钨(vi)粒度以增强硅橡胶复合材料的辐射屏蔽能力

IF 3.2 3区 化学 Q2 POLYMER SCIENCE e-Polymers Pub Date : 2023-12-20 DOI:10.1515/epoly-2023-0137
Dalal A. Aloraini, Aljawhara H. Almuqrin, M. I. Sayyed, Mohamed Elsafi
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引用次数: 0

摘要

在这项工作中,研究了由微米级和纳米级三氧化钨(WO3)颗粒增强的硅橡胶(SR)复合材料的衰减特性。制备了不同的微量三氧化钨和纳米三氧化钨 SR 复合材料。主要的复合材料是 SR-(WO3)60m(40% 的 SR 含 60% 的微量-WO3),其他复合材料则是通过用纳米 WO3 颗粒取代微量颗粒的百分比来制备的。这些复合材料的线性衰减系数测量范围为 0.06-1.333 MeV。微粒和纳米粒子的共同存在可能会增强与射入光子的相互作用,从而产生更大的屏蔽作用。换句话说,微型-WO3 和纳米-WO3 具有不同的尺寸和表面积。在 0.06 MeV 时,我们注意到从 SR-W60m 到 SR-W60n 的半值层(HVL)明显下降。HVL 值的降低顺序(SR-(WO3)60m >;SR-(WO3)60n >;SR-(WO3)40m20n >;SR-(WO3)20m40n >;SR-(WO3)30m30n)表明,与参考材料相比,微米级和纳米级 WO3 的加入有助于提高辐射屏蔽效率。SR-(WO3)30m30n 在 0.662 MeV 时的辐射屏蔽效率 (RSE) 为 38.40%。这意味着,如果一束能量为 0.662 MeV 的光子与 SR-W40m20n 样品相互作用,只有 38.12% 的光子被成功吸收或阻止,而其余 61.88% 的光子可以穿过该样品。在 1.333 MeV 时,观察到的 RSE 最低,这说明所制备的复合材料在较高能量下的衰减能力较弱。
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Variation in tungsten(vi) oxide particle size for enhancing the radiation shielding ability of silicone rubber composites
In this work, the attenuation properties of silicon rubber (SR) composites reinforced by both micro- and nano-sized Tungsten trioxide (WO3) particles are studied. Different SR composites with different combinations of micro-WO3 and nano-WO3 have been prepared. The main composite, SR-(WO3)60m (40% SR containing 60% micro-WO3), and other compositions were prepared by replacing percentages of microparticles with nanoparticles of WO3. The linear attenuation coefficient for these composites was measured in the range of 0.06–1.333 MeV. The existence of micro and nanoparticles together may result in enhanced interactions with incoming photons, leading to greater shielding. In other words, micro-WO3 and nano-WO3 have various sizes and surface areas. At 0.06 MeV, we notice a distinguished decrease in the half value layer (HVL) from SR-W60m to SR-W60n. The sequence of reducing HVL values (SR-(WO3)60m > SR-(WO3)60n > SR-(WO3)40m20n > SR-(WO3)20m40n > SR-(WO3)30m30n) suggest that the inclusion of both micro- and nano-WO3 contributes to more efficient radiation shielding compared to the reference material. The radiation shielding efficiency (RSE) for SR-(WO3)30m30n at 0.662 MeV is 38.40%. This means that if a beam of photons with energy of 0.662 MeV interacts with SR-W40m20n sample, only 38.12% of the photons are successfully absorbed or stopped, whereas the remaining 61.88% can pass through this sample. At 1.333 MeV, the lowest RSE is observed, which means that the prepared composites have weak attenuation ability at higher energy levels.
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来源期刊
e-Polymers
e-Polymers 化学-高分子科学
CiteScore
5.90
自引率
10.80%
发文量
64
审稿时长
6.4 months
期刊介绍: e-Polymers is a strictly peer-reviewed scientific journal. The aim of e-Polymers is to publish pure and applied polymer-science-related original research articles, reviews, and feature articles. It includes synthetic methodologies, characterization, and processing techniques for polymer materials. Reports on interdisciplinary polymer science and on applications of polymers in all areas are welcome. The present Editors-in-Chief would like to thank the authors, the reviewers, the editorial staff, the advisory board, and the supporting organization that made e-Polymers a successful and sustainable scientific journal of the polymer community. The Editors of e-Polymers feel very much engaged to provide best publishing services at the highest possible level.
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