Proton beam monitoring through water scintillation in radiobiology experiments

IF 2.8 3区 物理与天体物理 Q3 CHEMISTRY, PHYSICAL
Flavien Ralite , M. Evin , Charbel Koumeir , Arnaud Guertin , Ferid Haddad , Quentin Mouchard , Noel Servagent , Vincent Metivier
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Abstract

Non-invasive methods based on the detection of secondary particles generated in the irradiated medium are being investigated to monitor ion beams without disturbing the beam. This study investigates the use of water scintillation as a beam monitoring tool, taking into account the challenges posed by the radiobiology experiment constraints. An experimental setup has been designed to measure the depth deposited energy profile produced by protons of (67.5 ± 0.4) MeV entering a water tank, through the water scintillation detected with a photomultiplier. The beam current during the experiment was around 100 pA, and beam intensity fluctuations were monitored using a parallel plate ionization chamber and a Faraday cup. The experiment was repeated with a second ionization chamber as a reference detector placed inside the water tank, and simulated with the GATE Monte Carlo code. The position of the Bragg peak, measured with the water scintillation, shows significant agreement (deviation of 0.5 mm) with the positions obtained from the ionization chamber and the Monte Carlo simulation within a submillimeter uncertainty. The ionization quenching effect was also observed and corrected using the Birks and Chou models. A new value of the key parameter for these models (k · B = (8.0 ± 4.0) × 10−3 g/MeV.cm2) has been determined for water, which is in good agreement with the data available in the literature for organic scintillators. This study demonstrated the feasibility of using water scintillation measured with a collimated photomultiplier as a tool for monitoring the depth deposited energy profile in water.
放射生物学实验中水闪烁的质子束监测
基于检测辐照介质中产生的二次粒子的非侵入性方法正在研究中,以监测离子束而不干扰光束。考虑到放射生物学实验限制所带来的挑战,本研究探讨了水闪烁作为光束监测工具的使用。设计了一种实验装置,通过光电倍增管探测水闪烁,测量(67.5±0.4)MeV的质子进入水箱后产生的深度沉积能量分布。实验过程中束流电流约为100pa,采用平行板电离室和法拉第杯监测束流强度波动。在水箱内放置了第二个电离室作为参考探测器,重复了实验,并用GATE蒙特卡罗代码进行了模拟。用水闪烁测量的布拉格峰的位置与电离室和蒙特卡罗模拟得到的位置在亚毫米不确定度内有显著的一致性(偏差为0.5 mm)。用Birks和Chou模型也观察并修正了电离猝灭效应。这些模型的关键参数k·B =(8.0±4.0)× 10−3 g/MeV。测定了水的Cm2),这与文献中关于有机闪烁体的数据很好地一致。本研究证明了用准直光电倍增管测量水闪烁作为监测水中深度沉积能量剖面的工具的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Radiation Physics and Chemistry
Radiation Physics and Chemistry 化学-核科学技术
CiteScore
5.60
自引率
17.20%
发文量
574
审稿时长
12 weeks
期刊介绍: Radiation Physics and Chemistry is a multidisciplinary journal that provides a medium for publication of substantial and original papers, reviews, and short communications which focus on research and developments involving ionizing radiation in radiation physics, radiation chemistry and radiation processing. The journal aims to publish papers with significance to an international audience, containing substantial novelty and scientific impact. The Editors reserve the rights to reject, with or without external review, papers that do not meet these criteria. This could include papers that are very similar to previous publications, only with changed target substrates, employed materials, analyzed sites and experimental methods, report results without presenting new insights and/or hypothesis testing, or do not focus on the radiation effects.
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