Dosimetric and temporal beam characterization of individual pulses in FLASH radiotherapy using Timepix3 pixelated detector placed out-of-field.

IF 3.3 3区 医学 Q1 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING Physica Medica-European Journal of Medical Physics Pub Date : 2025-01-01 Epub Date: 2024-12-11 DOI:10.1016/j.ejmp.2024.104872
Cristina Oancea, Katerina Sykorova, Jan Jakubek, Jiri Pivec, Felix Riemer, Steven Worm, Alexandra Bourgouin
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Abstract

Background: FLASH radiotherapy necessitates the development of advanced Quality Assurance methods and detectors for accurate monitoring of the radiation field. This study introduces enhanced time-resolution detection systems and methods used to measure the delivered number of pulses, investigate temporal structure of individual pulses and dose-per-pulse (DPP) based on secondary radiation particles produced in the experimental room.

Methods: A 20 MeV electron beam generated from a linear accelerator (LINAC) was delivered to a water phantom. Ultra-high dose-per-pulse electron beams were used with a dose-per-pulse ranging from ̴ 1 Gy to over 7 Gy. The pulse lengths ranged from 1.18 µs to 2.88 µs at a pulse rate frequency of 5 Hz. A semiconductor pixel detector Timepix3 was used to track single secondary particles. Measurements were performed in the air, while the detector was positioned out-of-field at a lateral distance of 200 cm parallel with the LINAC exit window. The dose deposited was measured along with the pulse length and the nanostructure of the pulse.

Results: The time of arrival (ToA) of single particles was measured with a resolution of 1.56 ns, while the deposited energy was measured with a resolution of several keV based on the Time over Threshold (ToT) value. The pulse count measured by the Timepix3 detector corresponded with the delivered values, which were measured using an in-flange integrating current transformer (ICT). A linear response (R2 = 0.999) was established between the delivered beam current and the measured dose at the detector position (orders of nGy). The difference between the average measured and delivered pulse length was ∼0.003(30) μs.

Conclusion: This simple non-invasive method exhibits no limitations on the delivered DPP within the range used during this investigation.

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使用放置在场外的Timepix3像素化探测器对FLASH放射治疗中单个脉冲的剂量学和时间束特性。
背景:FLASH 放射治疗需要开发先进的质量保证方法和探测器,以准确监测辐射场。本研究介绍了增强型时间分辨率检测系统和方法,用于测量输出脉冲数、研究单个脉冲的时间结构以及基于实验室内产生的二次辐射粒子的每脉冲剂量(DPP):方法:将由直线加速器(LINAC)产生的 20 MeV 电子束输送到一个水模型中。使用了超高剂量脉冲电子束,每脉冲剂量范围从̴ 1 Gy 到超过 7 Gy。脉冲长度从1.18微秒到2.88微秒不等,脉冲频率为5赫兹。使用半导体像素探测器 Timepix3 跟踪单个次级粒子。测量在空气中进行,探测器位于场外,与 LINAC 出口窗口平行,横向距离为 200 厘米。在测量沉积剂量的同时,还测量了脉冲长度和脉冲的纳米结构:结果:测量单个粒子的到达时间(ToA)的分辨率为 1.56 ns,而根据超过阈值时间(ToT)值测量沉积能量的分辨率为几 keV。Timepix3 探测器测量的脉冲计数与输出值一致,输出值是通过法兰内积分电流互感器(ICT)测量的。输出束流与探测器位置的测量剂量(数量级 nGy)之间呈线性响应(R2 = 0.999)。测量到的平均脉冲长度与输出脉冲长度之差为 0.003(30) μs:结论:这种简单的非侵入式方法在本研究使用的范围内对输出的 DPP 没有任何限制。
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来源期刊
CiteScore
6.80
自引率
14.70%
发文量
493
审稿时长
78 days
期刊介绍: Physica Medica, European Journal of Medical Physics, publishing with Elsevier from 2007, provides an international forum for research and reviews on the following main topics: Medical Imaging Radiation Therapy Radiation Protection Measuring Systems and Signal Processing Education and training in Medical Physics Professional issues in Medical Physics.
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