论文标题

100 ps的TOF检测系统用于在线范围 - 监测中

A 100 ps TOF Detection System for On-Line Range- Monitoring in Hadrontherapy

论文作者

Marcatili, Sara, Curtoni, Sébastien, Dauvergne, Denis, Haddad, Ferid, Jacquet, Maxime, Koumeir, Charbel, Létang, Jean Michel, Livingstone, Jayde, Métivier, Vincent, Gallin-Martel, Laurent, Gallin-Martel, Marie-Laure, Muraz, Jean-François, Servagent, Noel, Testa, Étienne

论文摘要

目前,火疗治疗的准确性受离子范围的不确定性限制。为了充分利用该技术的潜力,我们提出了一种基于TOF分辨(飞行时间)及时伽马(PG)成像的新型粒子治疗系统的新系统,并以100 ps的时间分辨率进行了成像。我们的目的是在会议开始时在前几个辐射点中检测质子范围可能会偏离质子范围。该系统由用于单个质子标记的基于钻石的梁霍型镜组成,并与一个或多个伽马探测器及时合一地进行操作。质子到达的质子时间与PG检测时间之间的TOF提供了对患者质子范围的间接测量,其精度与系统时间分辨率严格相关。在一个〜38 cm $^{3} $ BAF2检测器距离异质PMMA目标15厘米处的情况下,我们获得了101 PS(RMS)的巧合时间分辨率。该系统使我们能够测量PMMA目标中空气腔的厚度和位置,并且相关的质子范围偏移:可以在单个大辐照点(〜10 $^{8} $质子)内以2 $σ$置信度检测到3毫米移位。我们目前正在构想具有3D目标覆盖率的多通道PG正时检测器。每个像素将提供PG检测时间及其命中位置,可用于重建患者中PG顶点的3D分布。我们的方法不需要准直,并且可以大大提高检测效率。由于信号检测和背景排斥都基于TOF,因此可以放宽能量分辨率的限制以进一步改善时间分辨率。

The accuracy of hadrontherapy treatment is currently limited by ion-range uncertainties. In order to fully exploit the potential of this technique, we propose the development of a novel system for online control of particle therapy, based on TOF-resolved (time-of-flight) Prompt Gamma (PG) imaging with 100 ps time resolution. Our aim is to detect a possible deviation of the proton range with respect to treatment planning within the first few irradiation spots at the beginning of the session. The system consists of a diamond-based beam hodoscope for single proton tagging, operated in time coincidence with one or more gamma detectors placed downstream of the patient. The TOF between the proton time of arrival in the hodoscope and the PG detection time provides an indirect measurement of the proton range in the patient with a precision strictly related to the system time resolution. With a single ~38 cm$^{3}$ BaF2 detector placed at 15 cm from a heterogeneous PMMA target, we obtained a coincidence time resolution of 101 ps (rms). This system allowed us to measure the thickness and position of an air cavity within a PMMA target, and the associated proton range shift: a 3 mm shift can be detected at 2$σ$ confidence level within a single large irradiation spot (~10$^{8}$ protons). We are currently conceiving a multi-channel PG timing detector with 3D target coverage. Each pixel will provide the PG detection time and its hit position, that can be used to reconstruct the 3D distribution of PG vertices in the patient. Our approach does not require collimation and allows to dramatically increase the detection efficiency. Since both signal detection and background rejection are based on TOF, the constraints on energy resolution can be relaxed to further improve time resolution.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源