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The real-time dose measurement scintillating fiber array for intravascular brachytherapy procedures

机译:用于血管内近距离放射治疗程序的实时剂量测量闪烁纤维阵列

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Intravascular brachytherapy using catheter based high dose rate /spl beta/ sources has taken nowadays an important role in interventional cardiology to combat in-stent restenosis following percutaneous transluminal coronary angioplasty. At the present time, there is no detector system which can record accurate quantitative doses and spatial information in real time for intravascular brachy therapy. This is partially because of the short-range of the low energy beta emission of /sup 32/P (average energy of 690 keV) and /sup 90/Sr//sup 90/Y (average energy of 930 keV) and the resolution limitation of existing extrapolation chambers and radiochromatic-dye films (currently the preferred method used). However, relatively high non-uniformity, which occurs at the stepping region due to excessive gapping or overlapping between steps, might result in in-stent restenosis or detrimental to the coronary vascular structure due to significant discrepancies between prescribed and delivered doses. We have developed a scintillating fiber based beta detector prototype which will permit: (i) extracting in real time of accurate dose measurements of the radioactive emitter in 2D or 3D; (ii) address the junction/stepping problem in a reliable fashion; (iii) allow extraction of information on the (in)homogeneity of the radioactive source (if any); and (iv) provide a quick feedback to radio-therapists for a fast re-adjustment of the radiation exposure for patient treatments. It is composed of an array of 3 /spl times/ 3 mm/sup 2/ scintillating fibers optically coupled to photo-multiplier tubes for photon-to-current conversion. A CAMAC LabView based data acquisition system is used for data collection, histogramming and data analysis. A Geant4 Monte Carlo simulation was also specially developed for this detector to provide the necessary tool to investigate the various capabilities of such devices.
机译:如今,使用基于导管的高剂量率/ spl beta /来源的血管内近距离放射疗法在介入心脏病学中抗击经皮腔内冠状动脉成形术后的支架内再狭窄起着重要作用。目前,还没有能够实时记录准确定量剂量和空间信息以进行血管内近距离放射治疗的检测器系统。部分原因是/ sup 32 / P(平均能量690 keV)和/ sup 90 / Sr // sup 90 / Y(平均能量930 keV)的低能beta发射的短距离和分辨率限制现有的外推腔和放射性染料膜(当前使用的首选方法)。但是,由于在步骤之间过度的间隙或重叠而导致的在步骤区域出现的相对较高的不均匀性,可能会由于指定剂量和输送剂量之间的显着差异而导致支架内再狭窄或对冠状血管结构的损害。我们已经开发出了一种基于闪烁纤维的β检测器原型,该原型将允许:(i)实时提取2D或3D放射性发射体的准确剂量测量值; (ii)以可靠的方式解决交界处/台阶问题; (iii)允许提取有关放射源(如有)同质性的信息; (iv)向放射治疗师提供快速反馈,以快速重新调整患者治疗的放射线照射。它由3个/ spl次/ 3 mm / sup 2 /的闪烁纤维阵列组成,这些阵列光学耦合到光电倍增管以进行光子到电流的转换。基于CAMAC LabView的数据采集系统用于数据收集,直方图和数据分析。还专门为此探测器开发了Geant4蒙特卡洛模拟,以提供必要的工具来研究此类设备的各种功能。

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