基于HV-CMOS像素探测器的离子束治疗束监测器

Q3 Physics and Astronomy
A. Dierlamm, M. Balzer, F. Ehrler, U. Husemann, R. Koppenhöfer, I. Perić, M. Pittermann, B. Topko, A. Weber, S. Brons, J. Debus, N. Grau, T. Hansmann, O. Jäkel, S. Klüter, J. Naumann
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引用次数: 0

摘要

粒子疗法是一种公认的肿瘤临床治疗方法。全世界有一百多个粒子治疗中心在运作。使用像质子或碳离子这样的强子作为肿瘤照射的粒子的优点是深度依赖性能量沉积的明显峰值,这可以用来在肿瘤细胞中准确地沉积剂量。为了保证这一点,粒子束的高精度监测和控制至关重要。在粒子束进入患者之前,它穿过监测系统,该监测系统必须就束的位置和剂量率向束控制系统提供快速反馈,同时与束的相互作用最小。当需要快速响应时间(漂移时间)时,主要用作光束位置监测器的多线腔有其局限性。未来的发展,如MRI引导的离子束治疗,对束监测系统提出了额外的挑战,如磁场和声学噪声(振动)的耐受性。固态探测器有望克服这些限制,它们提供的更高分辨率可以带来额外的好处。本文介绍了用于光束监测的HV-CMOS探测器的评估,提供了治疗光束的可行性研究结果,并总结了最终大规模组装和读出系统的概念。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Beam Monitor for Ion Beam Therapy Based on HV-CMOS Pixel Detectors
Particle therapy is a well established clinical treatment of tumors. More than one hundred particle therapy centers are in operation world-wide. The advantage of using hadrons like protons or carbon ions as particles for tumor irradiation is the distinct peak in the depth-dependent energy deposition, which can be exploited to accurately deposit doses in the tumor cells. To guarantee this, high accuracy in monitoring and control of the particle beam is of the utmost importance. Before the particle beam enters the patient, it traverses a monitoring system which has to give fast feedback to the beam control system on position and dose rate of the beam while minimally interacting with the beam. The multi-wire chambers mostly used as beam position monitors have their limitations when a fast response time is required (drift time). Future developments such as MRI-guided ion beam therapy pose additional challenges for the beam monitoring system, such as tolerance of magnetic fields and acoustic noise (vibrations). Solid-state detectors promise to overcome these limitations and the higher resolution they offer can create additional benefits. This article presents the evaluation of an HV-CMOS detector for beam monitoring, provides results from feasibility studies in a therapeutic beam, and summarizes the concepts towards the final large-scale assembly and readout system.
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来源期刊
Instruments
Instruments Physics and Astronomy-Instrumentation
CiteScore
2.60
自引率
0.00%
发文量
70
审稿时长
11 weeks
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