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用于增强正电子发射断层成像中伽马射线定位的棱镜状光导阵列:闪烁光子输运的蒙特卡罗模拟研究。

Prismatoid light guide array for enhanced gamma ray localization in PET: a Monte Carlo simulation study of scintillation photon transport.

机构信息

Department of Biomedical Engineering, Stony Brook University, Stony Brook, NY, United States of America.

出版信息

Phys Med Biol. 2020 Sep 16;65(18):18LT01. doi: 10.1088/1361-6560/ab9373.

Abstract

High spatial resolution PET relies on having excellent depth-of-interaction (DOI) resolution and small detector elements. Depth-encoding in PET modules has traditionally been performed using dual-ended readout. In recent years, researchers have explored the feasibility of replacing the second readout array with a light guide at the entrance layer that introduces intercrystal light sharing in order to reduce cost and and make depth-encoding modules more compact. However, single-ended readout depth-encoding modules have suboptimal and non-uniform crystal separation and DOI performance due to the random light sharing patterns of the uniform light guide, resulting in degraded peformance along the edges and corners of the detector arrays. In this paper, we introduce and characterize a segmented light guide composed of an array of prism mirrors which introduce deterministic intercrystal light sharing in single-ended readout PET detectors. We determined the expected spatial performance of our modules with our light guide using optical ray tracing Monte Carlo simulations. We demonstrate that having controlled, deterministic light sharing improves both DOI and crystal identification performance, enabling uniform spatial performance throughout the detector array. Designed specifically for high resolution PET, our prismatoid light guide array can be used to build cost-effective total-body and organ-dedicated PET systems with single-ended readout depth-encoding modules.

摘要

高空间分辨率 PET 依赖于具有优异的深度-of-interaction (DOI) 分辨率和小的探测器元件。在 PET 模块中,深度编码传统上是通过双端读出来完成的。近年来,研究人员已经探索了用位于入口层的光导替代第二读出阵列的可行性,这种光导可以引入晶体间的光共享,以降低成本并使深度编码模块更加紧凑。然而,由于均匀光导的随机光共享模式,单端读出深度编码模块的晶体分离和 DOI 性能不佳,导致探测器阵列的边缘和角落处性能下降。在本文中,我们介绍并表征了一种由棱镜镜阵列组成的分段光导,该光导在单端读出 PET 探测器中引入了确定性的晶体间光共享。我们使用光学射线追踪蒙特卡罗模拟确定了我们的光导模块的预期空间性能。我们证明,有控制的、确定性的光共享可以提高 DOI 和晶体识别性能,从而使探测器阵列具有均匀的空间性能。我们专门为高分辨率 PET 设计的棱镜光导阵列可用于构建具有单端读出深度编码模块的经济型全身和器官专用 PET 系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d241/11025681/0e3718c8a3d3/nihms-1980837-f0001.jpg

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