经济高效的高分辨率模块化像素化临床 SPECT 探测器,基于小型 NaI (Tl) 像素和中型单阳极 PMT,利用闪烁光输出的空间调制功能

M. Rozler, W. Chang
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引用次数: 1

摘要

目前,SPECT 系统专用于特定器官成像的趋势为提高伽马相机的性能带来了新的压力。许多设计依赖于投影最小化,通过获取多个非重叠的同步视图来提高系统灵敏度,这对探测器的固有空间分辨率(ISR)提出了严格的要求。弧形探测器的几何形状需要模块化组件,而单片式平板探测器由于边缘死角大而不切实际。在此之前,我们曾介绍过一种模块化探测器,它基于一个闪烁体块,由 2.75 × 2.75 × 10 mm3 NaI(Tl)像素组成,间距为 3 × 3 mm,并由一个直径为 51 mm 的单阳极 PMT 阵列进行解码。从整个区域的平均值来看,曲面探测器的事件定位精度超过了具有 2.75 毫米 ISR 的假定单片探测器。为了缩小像素尺寸/间距,从而增加横轴维度(探测器弯曲和最小化应用的维度)的线性采样,我们在相邻像素之间引入了闪烁光输出调制。每隔一列像素的出口表面都有一系列窄的吸收条纹,从而在相邻像素之间产生光输出调制,并允许使用能量分辨来更有效地将事件分配到正确的像素上。与 3×3 毫米间距的模块相比,我们的新型探测器采用 2.25 × 2.75 × 10 立方毫米的 NaI(Tl)像素(2.5 × 3 毫米间距),在平均事件定位误差方面实现了相同的事件定位性能,同时产生了 10.3% 的能量分辨率。这意味着线性采样的改进,而定位精度(以及有效的空间分辨率)没有任何损失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A cost-effective high-resolution modular pixelated clinical SPECT detector based on small NaI (Tl) pixels with medium-size single-anode PMTs, utilizing spatial modulation of scintillation light output
The current trend toward SPECT systems dedicated to imaging specific organs has created new pressures to improve gamma camera performance. A number of designs rely on projection minification to increase system sensitivity by acquiring multiple non-overlapping simultaneous views, placing stringent requirements on detector intrinsic spatial resolution (ISR). Curved detector geometries require modular assemblies, making monolithic slab detectors impractical due to their large dead areas at the edges. Previously, we described a modular detector based on a scintillator block comprised of 2.75 × 2.75 × 10 mm3 NaI(Tl) pixels in a 3 × 3 mm pitch and decoded by an array of 51 mm diameter single-anode PMTs. The event positioning accuracy of the curved detector, averaged over its entire area, exceeds that of a hypothetical monolithic slab detector with 2.75 mm ISR. To reduce the pixel size/pitch and thus increase linear sampling in the transaxial dimension (the dimension along which the detector is curved and minification is applied), we introduce scintillation light output modulation between neighboring pixels. A series of narrow absorbing stripes is applied at the exit surface of every other pixel column, producing a modulation in light output between adjacent pixels and allowing the use of energy discrimination to more effectively assign events to the correct pixel. Compared to the 3×3 mm pitch modules, our new detector, with 2.25 × 2.75 × 10 mm3 NaI(Tl) pixels (2.5 × 3 mm pitch), achieves the same event positioning performance in terms of the average event positioning error, while yielding 10.3% energy resolution. This translates to an improvement in linear sampling, without any loss in positioning accuracy (and, thus, effective spatial resolution), a mod
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