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Performance evaluation of a small CZT pixelated semiconductor gamma camera system with a newly designed stack-up parallel-hole collimator

机译:带有新设计的叠层平行孔准直器的小型CZT像素化半导体伽马相机系统的性能评估

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Gamma ray imaging techniques that use a cadmium zinc telluride (CZT) or cadmium telluride (CdTe) pixelated semiconductor detectors have rapidly gained popularity as a key tool for nuclear medicine research. By using a pinhole collimator with a pixelated semiconductor gamma camera system, better spatial resolution can be achieved. However, this improvement in spatial resolution is accomplished with a decrease in the sensitivity due to the small collimator hole diameter. Furthermore, few studies have been conducted for novel parallel-hole collimator geometric designs with pixelated semiconductor gamma camera systems. A gamma camera system which combines a CZT pixelated semiconductor detector with a newly designed stack-up parallel-hole collimator was developed and evaluated. The eValuator-2500 CZT pixelated semiconductor detector (eV product, Saxonburg, PA) was selected for the gamma camera system. This detector consisted of a row of four CZT crystals of 12.8 mm in length with 3 mm in thickness. The proposed parallel-hole collimator consists of two layers. The upper layer results in a fourfold increase in hole size compared to a matched square hole parallel-hole collimator with an equal hole and pixel size, while the lower layer also consisted of fourfold holes size and pretty acts as a matched square hole parallel-hole collimator. The overlap ratios of these collimators were 1:1,1:2, 2:1, 1:5, and 5:1. These collimators were mounted on the eValuator-2500 CZT pixelated semiconductor detector. The basic performance of the imaging system was measured for a ~(57)Co gamma source (122 keV). The measured averages of sensitivity and spatial resolution varied depending on the overlap ratios of the proposed parallel-hole collimator and source-to-collimator distances. One advantage of our system is the use of stacked collimators that can select the best combination of system sensitivity and spatial resolution. With low counts, we can select a high sensitivity collimator with a 1:5 or 5:1 overlap ratio. For high counts, a 1:1 overlap ratio collimator combination is the best selection at this time. In addition, if a higher system spatial resolution is needed, we can increase the spatial resolution by stacking additional thin collimators. These results demonstrate that the developed small pixelated semiconductor gamma camera system has high potential as an effective instrument for low energy gamma ray imaging.
机译:使用碲化镉锌(CZT)或碲化镉(CdTe)像素化半导体探测器的伽马射线成像技术已迅速普及,成为核医学研究的关键工具。通过将针孔准直仪与像素化半导体伽马相机系统配合使用,可以实现更好的空间分辨率。但是,由于准直器孔径小,灵敏度降低而实现了空间分辨率的提高。此外,对于采用像素化半导体伽马相机系统的新型平行孔准直仪几何设计的研究很少。开发并评估了将CZT像素化半导体探测器与新设计的叠层平行孔准直仪结合在一起的伽马相机系统。选择了eValuator-2500 CZT像素化半导体探测器(eV产品,宾夕法尼亚州萨克森堡)作为伽马相机系统。该探测器由一排四个长度为12.8 mm,厚度为3 mm的CZT晶体组成。提出的平行孔准直仪由两层组成。与具有相同孔和像素尺寸的匹配方孔平行孔准直器相比,上层导致孔尺寸增加了四倍,而下层也由四孔尺寸组成,相当地充当了匹配的方孔平行孔准直器。这些准直器的重叠比为1:1、1:2、2:1、1、5和5:1。这些准直仪安装在eValuator-2500 CZT像素化半导体探测器上。测量了〜(57)Co伽马射线源(122 keV)的成像系统的基本性能。测得的灵敏度和空间分辨率的平均值根据所提出的平行孔准直仪的重叠比和源到准直仪的距离而变化。我们系统的优势之一是使用了堆叠式准直仪,可以选择系统灵敏度和空间分辨率的最佳组合。对于低计数,我们可以选择重叠比为1:5或5:1的高灵敏度准直仪。对于高计数,此时最好选择1:1重叠比的准直仪组合。另外,如果需要更高的系统空间分辨率,我们可以通过堆叠额外的细准直仪来提高空间分辨率。这些结果表明,所开发的小型像素化半导体伽马相机系统具有作为低能伽马射线成像有效仪器的巨大潜力。

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