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纳米体积中低能和中能氦离子与碳离子径迹结构参数的测量

Measurement of track structure parameters of low and medium energy helium and carbon ions in nanometric volumes.

作者信息

Hilgers G, Bug M U, Rabus H

出版信息

Phys Med Biol. 2017 Sep 12;62(19):7569-7597. doi: 10.1088/1361-6560/aa86e8.

DOI:10.1088/1361-6560/aa86e8
PMID:28895552
Abstract

Ionization cluster size distributions produced in the sensitive volume of an ion-counting wall-less nanodosimeter by monoenergetic carbon ions with energies between 45 MeV and 150 MeV were measured at the TANDEM-ALPI ion accelerator facility complex of the LNL-INFN in Legnaro. Those produced by monoenergetic helium ions with energies between 2 MeV and 20 MeV were measured at the accelerator facilities of PTB and with a Am alpha particle source. CH was used as the target gas. The ionization cluster size distributions were measured in narrow beam geometry with the primary beam passing the target volume at specified distances from its centre, and in broad beam geometry with a fan-like primary beam. By applying a suitable drift time window, the effective size of the target volume was adjusted to match the size of a DNA segment. The measured data were compared with the results of simulations obtained with the PTB Monte Carlo code PTra. Before the comparison, the simulated cluster size distributions were corrected with respect to the background of additional ionizations produced in the transport system of the ionized target gas molecules. Measured and simulated characteristics of the particle track structure are in good agreement for both types of primary particles and for both types of the irradiation geometry. As the range in tissue of the ions investigated is within the typical extension of a spread-out Bragg peak, these data are useful for benchmarking not only 'general purpose' track structure simulation codes, but also treatment planning codes used in hadron therapy. Additionally, these data sets may serve as a data base for codes modelling the induction of radiation damages at the DNA-level as they almost completely characterize the ionization component of the nanometric track structure.

摘要

在位于莱尼亚罗的LNL-INFN的TANDEM - ALPI离子加速器设施中,测量了能量在45 MeV至150 MeV之间的单能碳离子在离子计数无壁纳米剂量仪敏感体积内产生的电离簇尺寸分布。在PTB的加速器设施中并使用镅α粒子源,测量了能量在2 MeV至20 MeV之间的单能氦离子产生的电离簇尺寸分布。使用CH作为靶气体。电离簇尺寸分布在窄束几何条件下测量,初级束在距靶体积中心特定距离处穿过靶体积,以及在宽束几何条件下使用扇形初级束进行测量。通过应用合适的漂移时间窗口,调整靶体积的有效尺寸以匹配DNA片段的大小。将测量数据与使用PTB蒙特卡罗代码PTra获得的模拟结果进行比较。在比较之前,针对电离靶气体分子传输系统中产生的额外电离背景对模拟的簇尺寸分布进行校正。对于两种类型的初级粒子和两种类型的辐照几何条件,粒子径迹结构的测量和模拟特征都非常吻合。由于所研究离子在组织中的射程在扩展布拉格峰的典型范围内,这些数据不仅可用于对“通用”径迹结构模拟代码进行基准测试,还可用于对强子治疗中使用的治疗计划代码进行基准测试。此外,这些数据集可作为在DNA水平上模拟辐射损伤诱导的代码的数据库,因为它们几乎完全表征了纳米级径迹结构的电离成分。

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