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用于模拟同质化学中轨道间和轨道内相互作用的集成蒙特卡罗轨道结构模拟框架。

An integrated Monte Carlo track-structure simulation framework for modeling inter and intra-track effects on homogenous chemistry.

机构信息

Department of Radiation Oncology, University of California San Francisco, San Francisco, CA 94115, United States of America.

Faculty of Mathematics and Physics Sciences, Benemérita Universidad Autónoma de Puebla, Puebla 72000, Mexico.

出版信息

Phys Med Biol. 2023 Jun 9;68(12). doi: 10.1088/1361-6560/acd6d0.

Abstract

. The TOPAS-nBio Monte Carlo track structure simulation code, a wrapper of Geant4-DNA, was extended for its use in pulsed and longtime homogeneous chemistry simulations using the Gillespie algorithm.. Three different tests were used to assess the reliability of the implementation and its ability to accurately reproduce published experimental results: (1) a simple model with a known analytical solution, (2) the temporal evolution of chemical yields during the homogeneous chemistry stage, and (3) radiolysis simulations conducted in pure water with dissolved oxygen at concentrations ranging from 10M to 1 mM with [HO] yields calculated for 100 MeV protons at conventional and FLASH dose rates of 0.286 Gy sand 500 Gy s, respectively. Simulated chemical yield results were compared closely with data calculated using the Kinetiscope software which also employs the Gillespie algorithm.. Validation results in the third test agreed with experimental data of similar dose rates and oxygen concentrations within one standard deviation, with a maximum of 1% difference for both conventional and FLASH dose rates. In conclusion, the new implementation of TOPAS-nBio for the homogeneous long time chemistry simulation was capable of recreating the chemical evolution of the reactive intermediates that follow water radiolysis.. Thus, TOPAS-nBio provides a reliable all-in-one chemistry simulation of the physical, physico-chemical, non-homogeneous, and homogeneous chemistry and could be of use for the study of FLASH dose rate effects on radiation chemistry.

摘要

. TOPAS-nBio 蒙特卡罗轨迹结构模拟代码是 Geant4-DNA 的包装器,它使用 Gillespie 算法扩展为用于脉冲和长时间均匀化学模拟。.. 为了评估实现的可靠性及其准确重现已发表实验结果的能力,使用了三种不同的测试:(1) 具有已知解析解的简单模型,(2) 均匀化学阶段化学产率的时间演化,以及 (3) 在纯水中进行的辐解模拟,溶解氧浓度范围从 10M 到 1mM,使用 100MeV 质子在常规和 FLASH 剂量率为 0.286Gy 和 500Gy s 时计算[HO]产率,分别。模拟的化学产率结果与使用 Kinetiscope 软件计算的数据非常吻合,Kinetiscope 软件也使用 Gillespie 算法。.. 第三个测试的验证结果与类似剂量率和氧浓度的实验数据在一个标准差内一致,对于常规和 FLASH 剂量率,最大差异为 1%。总之,TOPAS-nBio 用于均匀长时间化学模拟的新实现能够重现水辐解后反应中间体的化学演变。.. 因此,TOPAS-nBio 提供了物理、物理化学、非均匀和均匀化学的可靠一体化化学模拟,并且可以用于研究 FLASH 剂量率对辐射化学的影响。

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