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用于质子束射程验证的关于布拉格峰的瞬发伽马射线发射特性:一项蒙特卡罗研究。

Characterization of prompt gamma-ray emission with respect to the Bragg peak for proton beam range verification: A Monte Carlo study.

作者信息

Zarifi Melek, Guatelli Susanna, Bolst David, Hutton Brian, Rosenfeld Anatoly, Qi Yujin

机构信息

Centre for Medical Radiation Physics, University of Wollongong, NSW, Australia.

Institute of Nuclear Medicine, University College London, London, UK.

出版信息

Phys Med. 2017 Jan;33:197-206. doi: 10.1016/j.ejmp.2016.12.011. Epub 2016 Dec 24.

DOI:10.1016/j.ejmp.2016.12.011
PMID:28027864
Abstract

In this paper we report a Geant4 simulation study to investigate the characteristic prompt gamma (PG) emission in a water phantom for real-time monitoring of the Bragg peak (BP) during proton beam irradiation. The PG production, emission spatial correlation with the BP, and position preference for detection with respect to the BP have been quantified in different PG energy windows as a function of proton pencil-beam energy from 100 to 200MeV. The PG response to small BP shifts was evaluated using a 2cm-thick slab with different human body materials embedded in a water phantom. Our results show that the prominent characteristic PG emissions of 4.44, 5.21 and 6.13MeV exhibit distinctive correlation with the dose deposition curve. The accuracy in BP position identification using these characteristic PG rays is highly consistent as the beam energy increases from 100 to 200MeV. There exists a position preference for PG detection with respect to the BP position, which has a strong dependence on the proton beam energy and PG energies. It was also observed that a submillimeter shift of the BP position can be realized by using PG signals. These results indicate that the characteristic PG signal is sensitive and reliable for BP tracking. Although the maximization of the PG measurement associated with the BP is difficult, it can be optimized with energy and detection position preferences.

摘要

在本文中,我们报告了一项Geant4模拟研究,旨在研究水模体中特征性瞬发伽马(PG)发射,以便在质子束辐照期间实时监测布拉格峰(BP)。在不同的PG能量窗口中,已将PG产生、与BP的发射空间相关性以及相对于BP的检测位置偏好作为100至200MeV质子笔形束能量的函数进行了量化。使用嵌入水模体中的具有不同人体材料的2厘米厚平板评估了PG对小BP位移的响应。我们的结果表明,4.44、5.21和6.13MeV的显著特征PG发射与剂量沉积曲线呈现出独特的相关性。随着束流能量从100MeV增加到200MeV,使用这些特征PG射线进行BP位置识别的准确性高度一致。相对于BP位置,PG检测存在位置偏好,这强烈依赖于质子束能量和PG能量。还观察到,通过使用PG信号可以实现BP位置的亚毫米级位移。这些结果表明,特征PG信号对BP跟踪敏感且可靠。尽管与BP相关的PG测量最大化很困难,但可以通过能量和检测位置偏好进行优化。

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