超高速高分辨率PET探测器的设计与可行性研究

L. Meng, D. Herbert, D. Ramsden
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摘要

在本文中,我们介绍了一种新型、超快速和高分辨率PET检测器的设计和可行性研究结果。它是基于使用LSO晶体阵列读出的多像素混合光电二极管(M-HPD)使用编码光纤光导。光纤编码方法使人们能够使用具有61像素的单个M-HPD管读出400多个离散晶体元素。该探测器的主要特点之一是,与数字读出系统一起使用的编码光纤光导,消除了使用adc来查找发生相互作用的晶体地址的需要。由大约400个2/spl倍/2/spl倍/10毫米离散晶体组成的探测器的读出时间,定义为识别巧合和提供晶体命中地址之间的时间,可以减少到小于0.1 /spl mu/s。因此,人们可以显著提高基于这种检测器设计的PET系统的噪声有效计数率(NECR)性能。该检测器设计的另一个优点是采用并行读出方案,通过消除读出系统中ADC的使用,大大简化了读出电子器件。利用基于5/spl × 2/spl × 2/spl × 10 mm LSO晶体的5/spl × 5阵列的原型探测器模块进行测量,证实了该探测器设计的可行性。在511 keV能量沉积在探测器上时,测量到约200个光电子的信号电平。能量分辨率达到/spl sim/30%,时间分辨率小于4 ns。
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Design and feasibility study of an ultra-fast high resolution PET detector
In this paper, we present the design and the results of a feasibility study of a novel, ultra-fast and high-resolution PET detector. It is based on the use of an LSO crystal array read-out by a Multi pixel Hybrid PhotoDiode (M-HPD) using an encoded fiber light-guide. The fiber encoding method enables one to readout more than 400 discrete crystal elements using a single M-HPD tube having 61 pixels. One of the key features of the detector is that the encoded fiber light-guide, used in conjunction with a digital readout system, eliminates the need for the use of ADCs in finding the address of the crystal in which interaction occurred. The readout time of a detector comprising around four hundred 2/spl times/2/spl times/10 mm discrete crystals, defined as the time between identifying a coincidence and providing the address of the crystal hit, can be reduced to less than 0.1 /spl mu/s. As a consequence, one could significantly improve the noise-effective-count-rate (NECR) performance of a PET system based on this detector design. Another advantage of this detector design is that the parallel readout scheme used, greatly simplifies the readout electronics by eliminating the use of ADC in the readout system. The feasibility of this detector design has been confirmed by measurements using a prototype detector module based on a 5/spl times/5 array of 2/spl times/2/spl times/10 mm LSO crystals. A signal level of around 200 photoelectrons has been measured for 511 keV energy deposited in the detector. An energy-resolution of /spl sim/30% and a timing resolution of less than 4 ns were achieved in this study.
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