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基于综合模拟的氧化铋和氧化钨增强聚合物复合材料在核医学职业安全中γ辐射屏蔽性能评估。

Comprehensive Simulation-Based Evaluation of Gamma Radiation Shielding Performance of Bismuth Oxide- and Tungsten Oxide-Reinforced Polymer Composites for Nuclear Medicine Occupational Safety.

作者信息

Marshall Suphalak Khamruang, Kwandee Poochit, Songphum Nueafa, Chuaymuang Jarasrawee

机构信息

Department of Radiology, Faculty of Medicine, Prince of Songkla University, Songkhla 90110, Thailand.

出版信息

Polymers (Basel). 2025 May 27;17(11):1491. doi: 10.3390/polym17111491.

Abstract

This study employs simulation tools to design and evaluate lightweight, lead-free polymer composites incorporating polytetrafluoroethylene (PTFE), polyethylene (PE), and polyetherimide (PEI) for gamma radiation shielding in nuclear medicine. Targeting clinically relevant photon energies from Tc-99m (140 keV), I-131 (364 keV), and Cs-137 (662 keV), composites' structural and shielding performance with BiO and WO was assessed using XCOM and Phy-X/PSD. PEI emerged as the most suitable polymer for load-bearing and thermally exposed applications, offering superior mechanical stability and dimensional integrity. BiO-WO fillers for Tc-99m achieved a ~7000-fold increase in MAC, I-131 ~2063-fold, and Cs-137 ~1370-fold compared to PbO. The PEI-75BiO-25WO achieved a ~21-fold reduction in half-value layer (HVL) compared to lead for Tc-99m. For higher-energy isotopes of I-131 and Cs-137, HVL reductions of ~0.44-fold and ~0.08-fold, respectively, were achieved. The results demonstrate that high-Z dual filler polymer composites have an equal or enhanced attenuation properties to lead-based shielding, whilst also enhancing the polymer composites' mechanical and thermal characteristics. As the use of ionizing radiation increases, so does the potential risks; high-Z dual filler polymer composites provide a sustainable, lightweight, non-toxic alternative to conventional lead shielding.

摘要

本研究采用模拟工具来设计和评估用于核医学中γ射线屏蔽的轻质无铅聚合物复合材料,该复合材料包含聚四氟乙烯(PTFE)、聚乙烯(PE)和聚醚酰亚胺(PEI)。针对来自Tc - 99m(140 keV)、I - 131(364 keV)和Cs - 137(662 keV)的临床相关光子能量,使用XCOM和Phy - X/PSD评估了含BiO和WO的复合材料的结构和屏蔽性能。PEI成为最适合承受负载和热暴露应用的聚合物,具有卓越的机械稳定性和尺寸完整性。与PbO相比,用于Tc - 99m的BiO - WO填料使质量衰减系数(MAC)提高了约7000倍,I - 131提高了约2063倍,Cs - 137提高了约1370倍。与铅相比,PEI - 75BiO - 25WO对于Tc - 99m的半价层(HVL)降低了约21倍。对于更高能量的I - 131和Cs - 137同位素,HVL分别降低了约0.44倍和约0.08倍。结果表明,高Z值双填料聚合物复合材料具有与铅基屏蔽相等或增强的衰减性能,同时还增强了聚合物复合材料的机械和热性能。随着电离辐射使用的增加,潜在风险也随之增加;高Z值双填料聚合物复合材料为传统铅屏蔽提供了一种可持续、轻质、无毒的替代方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8f77/12158205/1986b556b983/polymers-17-01491-g001.jpg

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