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质子治疗中陶瓷生物材料TRIM算法的蒙特卡罗模拟

Monte Carlo Simulation of TRIM Algorithm in Ceramic Biomaterial in Proton Therapy.

作者信息

Ekinci Fatih, Asuroglu Tunc, Acici Koray

机构信息

Institute of Nuclear Sciences, Ankara University, 06830 Ankara, Turkey.

Faculty of Medicine and Health Technology, Tampere University, 33720 Tampere, Finland.

出版信息

Materials (Basel). 2023 Jul 5;16(13):4833. doi: 10.3390/ma16134833.

Abstract

Biomaterials play a crucial role in enhancing human health and quality of life. They are employed in applications such as tissue substitution, diagnostic tools, medical supplies, therapeutic treatments, regenerative medicine, and radiation dosimetric studies. However, their predisposition to proton therapy, which is a trending treatment in the world, has not been adequately studied. Ceramic biomaterials, known for their hardness and durability, offer versatile uses, especially in bone tissue replacements. The wide range of physical, mechanical, and chemical properties exhibited by ceramics has spurred extensive research, development, and application in this field. This study focuses on investigating and analyzing the ionization, recoils, phonon release, collision events, and lateral scattering properties of ceramic biomaterials that closely resemble bone tissue in proton therapy applications. Monte Carlo (MC) Transport of Ions in Matter (TRIM) simulation tools were utilized for this analysis. The results showed that Silicon dioxide exhibited the Bragg peak position closest to bone tissue, with a deviation of 10.6%. The average recoils differed by 1.7%, and the lateral scattering differed by 3.6%. The main innovation of this study lies in considering interactions such as recoil, collision events, phonon production, and lateral scattering when selecting biomaterials, despite their limited digitization and understanding. By evaluating all these interactions, the study aimed to identify the most suitable ceramic biomaterial to replace bone tissue in proton therapy.

摘要

生物材料在改善人类健康和生活质量方面发挥着至关重要的作用。它们被应用于组织替代、诊断工具、医疗用品、治疗、再生医学以及辐射剂量学研究等领域。然而,它们对于质子治疗(一种在全球流行的治疗方法)的倾向性尚未得到充分研究。以硬度和耐久性著称的陶瓷生物材料具有多种用途,尤其在骨组织替代方面。陶瓷所展现出的广泛的物理、机械和化学性质激发了该领域的广泛研究、开发和应用。本研究聚焦于调查和分析在质子治疗应用中与骨组织极为相似的陶瓷生物材料的电离、反冲、声子释放、碰撞事件以及侧向散射特性。为此分析使用了蒙特卡罗(MC)物质中离子输运(TRIM)模拟工具。结果表明,二氧化硅呈现出最接近骨组织的布拉格峰位置,偏差为10.6%。平均反冲相差1.7%,侧向散射相差3.6%。本研究的主要创新之处在于,尽管生物材料的数字化和理解有限,但在选择生物材料时考虑了反冲、碰撞事件、声子产生和侧向散射等相互作用。通过评估所有这些相互作用,该研究旨在确定在质子治疗中替代骨组织的最合适的陶瓷生物材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae43/10343593/20447b0649b9/materials-16-04833-g001.jpg

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