Fiber Optics Research Centre, Faculty of Engineering, Multimedia University, Jalan Multimedia, 63100, Cyberjaya, Malaysia.
Lumisyns Sdn Bhd, Cyberjaya 63100, Selangor, Malaysia.
Biomed Phys Eng Express. 2024 Aug 28;10(5). doi: 10.1088/2057-1976/ad6f14.
Radiation therapy plays a pivotal role in modern cancer treatment, demanding precise and accurate dose delivery to tumor sites while minimizing harm to surrounding healthy tissues. Monte Carlo simulations have emerged as indispensable tools for achieving this precision, offering detailed insights into radiation transport and interaction at the subatomic level. As the use of scintillation and luminescence dosimetry becomes increasingly prevalent in radiation therapy, there arises a need for validated Monte Carlo tools tailored to optical photon transport applications. In this paper, an evaluation process of the TOPAS (TOol for PArticle Simulation) Monte Carlo tool for Cerenkov light generation, optical photon transport and radioluminescence based dosimetry is presented. Three distinct sources of validation data are utilized: one from a published set of experimental results and two others from simulations performed with the Geant4 code. The methodology employed for evaluation includes the selection of benchmark experiments, making use of opt3 and opt4 Geant4 physics models and simulation setup, with observed slight discrepancies within the calculation uncertainties. Additionally, the complexities and challenges associated with modeling optical photons generation through luminescence or Cerenkov radiation and their transport are discussed. The results of our evaluation suggests that TOPAS can be used to reliably predict Cerenkov generation, luminescence phenomenon and the behavior of optical photons in common dosimetry scenarios.
放射治疗在现代癌症治疗中起着关键作用,需要将精确和准确的剂量输送到肿瘤部位,同时最大限度地减少对周围健康组织的伤害。蒙特卡罗模拟已成为实现这种精确性的不可或缺的工具,提供了对亚原子水平的辐射传输和相互作用的详细了解。随着闪烁和发光剂量学在放射治疗中的应用越来越普遍,需要针对光学光子传输应用定制经过验证的蒙特卡罗工具。本文介绍了一种用于评估 TOPAS(用于粒子模拟的工具)蒙特卡罗工具的方法,用于模拟切伦科夫光的产生、光学光子的传输和基于放射发光的剂量测定。使用了三种不同的验证数据来源:一种来自已发表的实验结果集,另外两种来自使用 Geant4 代码进行的模拟。评估中使用的方法包括选择基准实验,利用 opt3 和 opt4 Geant4 物理模型和模拟设置,在计算不确定性内观察到了轻微的差异。此外,还讨论了通过发光或切伦科夫辐射生成和传输光学光子的建模的复杂性和挑战。我们的评估结果表明,TOPAS 可用于可靠地预测切伦科夫光的产生、发光现象以及光学光子在常见剂量测定情况下的行为。