采用大型闪烁体和数字硅光电倍增管的快速伽马探测系统的设计模型

K. Romer, G. Pausch, M. Berthel, A. Dreyer, W. Enghardt, C. Golnik, F. Hueso-González, Paul Jannusch, T. Kormoll, J. Petzoldt, H. Rohling, S. Schone, F. Fiedler
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引用次数: 0

摘要

在肿瘤治疗中,质子治疗被认为比传统的放射治疗更有优势。但范围不确定性很容易产生,必须纠正,最好是在辐照期间立即纠正。提示伽马是剂量沉积瞬时定位的好方法。探测系统必须应对高计数率、高达几兆电子伏的能量区域以及由于二次发射而增加的背景,同时提供有关探测到的伽马射线的能量、时间和位置的可靠信息。各种概念利用这些提示伽马射线进行剂量验证,如准直系统,康普顿相机或提示伽马定时方法。数字硅光电倍增管(dSiPM)由于具有良好的时序性能和不需要进一步的电子器件而成为pts的有利替代品,为了了解单片闪烁晶体工作时的复杂行为,已经对其进行了建模。特别是触发参数和验证参数的选择可能导致不同的光谱形状。该模型确定了在各个过程中丢失的光子以及触发时间信息,将有助于找到所需任务的最佳参数设置。对模拟光谱和实测光谱进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Model for the design of a prompt gamma detection system using large scintillators and digital silicon photomultipliers
Proton therapy is supposed to be advantageous compared to classical radiation therapy in oncology. But range uncertainties can arise easily and have to be corrected for, preferably immediately during irradiation. Prompt gammas are a good means of instantaneous localization of the dose deposition. Detection systems have to cope with high counting rates, an energy region of up to several MeV and increased background due to secondary emissions, while providing reliable information on energy, timing and location of the detected gamma ray. Various concepts utilize these prompt gammas for dose verification like collimated systems, Compton cameras or prompt gamma timing method. The digital silicon photomultiplier (dSiPM), being a favorable alternative to PMTs because of good timing performances and no requirement of further electronics, has been modelled in order to understand the complex behavior when working with monolithic scintillation crystals. Especially the selection of trigger- and validation-parameters may lead to different spectrum shapes. This model will be helpful for finding best parameter settings for the required task, because it determines the photons lost in various processes as well as the trigger timing information. Comparison of modelled spectra and measured spectra are presented.
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