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Non-invasive monitoring of therapeutic carbon ion beams in a homogeneous phantom by tracking of secondary ions

机译:通过跟踪次级离子对同质体模中的治疗性碳离子束进行非侵入式监控

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Radiotherapy with narrow scanned carbon ion beams enables a highly accurate treatment of tumours while sparing the surrounding healthy tissue. Changes in the patient's geometry can alter the actual ion range in tissue and result in unfavourable changes in the dose distribution. Consequently, it is desired to verify the actual beam delivery within the patient. Real-time and non-invasive measurement methods are preferable. Currently, the only technically feasible method to monitor the delivered dose distribution within the patient is based on tissue activation measurements by means of positron emission tomography (PET). An alternative monitoring method based on tracking of prompt secondary ions leaving a patient irradiated with carbon ion beams has been previously suggested. It is expected to help in overcoming the limitations of the PET-based technique like physiological washout of the beam induced activity, low signal and to allow for real-time measurements. In this paper, measurements of secondary charged particle tracks around a head-sized homogeneous PMMA phantom irradiated with pencil-like carbon ion beams are presented. The investigated energies and beam widths are within the therapeutically used range. The aim of the study is to deduce properties of the primary beam from the distribution of the secondary charged particles. Experiments were performed at the Heidelberg Ion Beam Therapy Center, Germany. The directions of secondary charged particles emerging from the PMMA phantom were measured using an arrangement of two parallel pixelated silicon detectors (Timepix). The distribution of the registered particle tracks was analysed to deduce its dependence on clinically important beam parameters: beam range, width and position. Distinct dependencies of the secondary particle tracks on the properties of the primary carbon ion beam were observed. In the particular experimental set-up used, beam range differences of 1.3 mm were detectable. In addition, variations in the beam width could be measured with a precision of 0.9 mm. Furthermore, shifts of the lateral beam position could be monitored with a sub-millimetre precision. The presented investigations demonstrate experimentally that the non-invasive measurement and analysis of secondary ion distributions around head-sized homogeneous objects provide information on the actual beam delivery. Beam range, width and position could be monitored with a precision attractive for therapeutic situations.
机译:用狭窄的扫描碳离子束进行放射治疗,可以在不影响周围健康组织的情况下,对肿瘤进行高精度治疗。患者几何形状的变化会改变组织中的实际离子范围,并导致剂量分布发生不利变化。因此,期望验证患者体内的实际束传输。实时和无创测量方法是首选。当前,监测患者内所输送剂量分布的唯一技术上可行的方法是基于借助正电子发射断层扫描(PET)进行的组织激活测量。先前已经提出了一种基于跟踪迅速的次级离子离开的患者的替代监测方法,所述次级离子离开患者的身体被碳离子束照射。有望帮助克服基于PET的技术的局限性,例如对生理盐水的束诱导活动,低信号进行生理冲洗,并允许进行实时测量。在本文中,介绍了用铅笔状碳离子束辐照的头部大小均一的PMMA幻像周围的次级带电粒子轨迹的测量。研究的能量和束宽度在治疗使用的范围内。该研究的目的是从次级带电粒子的分布推导初级光束的特性。实验在德国海德堡离子束治疗中心进行。使用两个平行像素化硅探测器(Timepix)的布置测量从PMMA体模出来的次级带电粒子的方向。分析了配准粒子轨迹的分布,以推断其对临床上重要的射束参数的依赖性:射束范围,宽度和位置。观察到次级粒子轨迹对初级碳离子束特性的明显依赖性。在使用的特定实验装置中,可以检测到1.3 mm的光束范围差异。另外,可以以0.9mm的精度测量光束宽度的变化。此外,可以以亚毫米精度监视横梁位置的变化。提出的研究实验证明,围绕头部大小的均匀物体进行的二次离子分布的无创测量和分析可提供有关实际束流传输的信息。可以以对治疗情况具有吸引力的精度来监控光束范围,宽度和位置。

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