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来自亚毫米分辨率正电子发射断层扫描(PET)系统的三维位置灵敏碲锌镉探测器及电子设备的一个子组件的特性描述。

Characterization of a sub-assembly of 3D position sensitive cadmium zinc telluride detectors and electronics from a sub-millimeter resolution PET system.

作者信息

Abbaszadeh Shiva, Gu Yi, Reynolds Paul D, Levin Craig S

机构信息

Department of Radiology, Stanford University, Stanford, CA 94305, USA.

出版信息

Phys Med Biol. 2016 Sep 21;61(18):6733-6753. doi: 10.1088/0031-9155/61/18/6733. Epub 2016 Aug 23.

Abstract

Cadmium zinc telluride (CZT) offers key advantages for small animal positron emission tomography (PET), including high spatial and energy resolution and simple metal deposition for fabrication of very small pixel arrays. Previous studies have investigated the intrinsic spatial, energy, and timing resolution of an individual sub-millimeter resolution CZT detector. In this work we present the first characterization results of a system of these detectors. The 3D position sensitive dual-CZT detector module and readout electronics developed in our lab was scaled up to complete a significant portion of the final PET system. This sub-system was configured as two opposing detection panels containing a total of twelve [Formula: see text] mm monolithic CZT crystals for proof of concept. System-level characterization studies, including optimizing the trigger threshold of each channel's comparators, were performed. Ge and Cs radioactive isotopes were used to characterize the energy resolution of all 468 anode channels in the sub-system. The mean measured global 511 keV photopeak energy resolution over all anodes was found to be [Formula: see text]% FWHM after correction for photon interaction depth-dependent signal variation. The measured global time resolution was 37 ns FWHM, a parameter to be further optimized, and the intrinsic spatial resolution was 0.76 mm FWHM.

摘要

碲锌镉(CZT)为小动物正电子发射断层扫描(PET)提供了关键优势,包括高空间分辨率和能量分辨率,以及用于制造非常小像素阵列的简单金属沉积工艺。先前的研究已经探究了单个亚毫米分辨率CZT探测器的固有空间、能量和时间分辨率。在这项工作中,我们展示了这些探测器组成的系统的首次表征结果。我们实验室开发的3D位置敏感双CZT探测器模块和读出电子设备被扩大规模,以完成最终PET系统的很大一部分。这个子系统被配置为两个相对的检测面板,总共包含十二个[公式:见正文]毫米的单片CZT晶体,用于概念验证。进行了系统级表征研究,包括优化每个通道比较器的触发阈值。使用锗和铯放射性同位素来表征子系统中所有468个阳极通道的能量分辨率。在校正了光子相互作用深度相关的信号变化后,发现所有阳极上测得的全局511 keV光电峰能量分辨率的平均值为[公式:见正文]%半高宽。测得的全局时间分辨率为37 ns半高宽,这是一个有待进一步优化的参数,固有空间分辨率为0.76毫米半高宽。

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