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Four-layered DOI-PET detector with quadrisected top layer crystals

机译:具有四层的DOI-PET检测器,具有四级顶层晶体

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Previously, we had developed a four-layered depth-of-interaction ( DOI ) PET detector based on the light sharing method. Reflectors, which were inserted in every two lines of crystal segments and shifted differently for each layer, projected 3D crystal positions onto a 2D position histogram without any overlapping after applying the Anger-type calculation. The best crystal separation we ever obtained was for the four-layered 32 x 32 array of LYSO crystals sized at 1.45 x 1.45 x 5 mm(3) . However, assembling small crystals tended to cost a lot, and fine tuning of the front-end circuit was required to get fine crystal identification. In this paper, therefore, we proposed a more practical four-layered DOI detector. Its key concept was that the crystals in the top layer, which have the highest detection efficiency, are the biggest contributors to the PET spatial resolution. We applied two new ideas: (1) using quarter size crystals only for the first (top) layer and (2) inserting a thin light guide between the first and the second layers of the crystal array. In the developed prototype detector, we used 24 x 24 LYSO crystals of quarter size (1.4 x 1.4 x 5.0 mm(3)) in the first layer and the other layers were 12 x 12 arrays of crystals of 2.8 x 2.8 x 5.0 mm(3). For better crystal identification of small crystals in the first layer, we optimized the optical condition between crystals by using an optical adhesive and air. Also, the thin light guide of 0.5 mm thickness was inserted between the first and the second layers for improvement of crystal identification of the first layer. With the appropriate insertion of the light guide, all crystals of the first layer were identified as well as the crystals in the other layers. Our developed four-layered DOI detector showed good potential for high spatial resolution without a large increase in the number of crystals.
机译:以前,我们开发了一种基于光共享方法的四层侧层的相互作用(DOI)PET探测器。反射器,其在每两条晶体段中插入并为每个层的方式移动,将3D晶体位置投影到2D位置直方图上,而在应用愤怒型计算后没有任何重叠。我们获得的最佳晶体分离是四层32 x 32阵列的Lyso晶体,其大小为1.45×45×5mm(3)。然而,组装小晶倾向于花费很多,并且需要前端电路的微调来获得细晶识别。因此,我们提出了一种更实用的四层DOI检测器。其关键概念是,具有最高检测效率的顶层中的晶体是宠物空间分辨率最大的贡献者。我们应用了两种新思路:(1)仅针对第一(顶部)层和(2)在晶体阵列的第一和第二层之间插入薄的光导的薄光导板。在开发的原型检测器中,我们在第一层中使用了24 x 24 Lyso晶体(1.4 x 1.4 x 5.0 mm(3)),另一层为12 x 12晶体,为2.8 x 2.8 x 5.0 mm( 3)。为了更好地识别第一层中的小晶体,我们通过使用光学粘合剂和空气优化晶体之间的光学条件。而且,在第一层和第二层之间插入0.5mm厚的薄光导,以改善第一层的晶体识别。利用光导的适当插入,鉴定第一层的所有晶体以及其他层中的晶体。我们开发的四层DOI检测器显示出高空间分辨率的良好潜力,而无需大幅增加。

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