Stolin Alexander V, Majewski Stan, Jaliparthi Gangadhar, Raylman Raymond R
Center for Advanced Imaging in the Department of Radiology at West Virginia University, Morgantown, WV 26506 USA.
IEEE Trans Nucl Sci. 2013 Feb;60(1):82-86. doi: 10.1109/tns.2013.2237788.
While the performance of most current commercially available PET scanners is sufficient for many standard clinical applications, some specific tasks likely require specialized imaging systems. The goal of this project is to explore the capabilities and limitations of a small, high-resolution prototype system for obtaining PET images. The scanner consists of a tandem of detectors. One is a small detector consisting of a 20 × 20 array of 0.7 × 0.7 × 3 mm (pitch 0.8 mm) LYSO elements. The scintillator array is coupled to an array of silicon photomultipliers. The second detector is a 96 × 72 array of 2 × 2 × 15 mm (pitch = 2.1 mm) LYSO elements coupled to PSPMTs. Separation between the two devices is 180 mm. The detectors are operated in coincidence with each other. Image reconstruction is performed using a limited angle, Maximum Likelihood Expectation Maximization (MLEM) algorithm. Evaluation of the device included measurements of spatial resolution and detection sensitivity as a function of distance. The transaxial radial and tangential spatial resolution of the system ranged from 0.6 mm to 0.9 mm FWHM; axial resolution ranged from 2.7 mm to 4.6 mm FWHM. Detection sensitivity ranged from 0.05 to 0.28%. Spatial resolution and field-of-view vary as a function of distance from the small detector. The tandem detector insert permitted differentiation of the smallest (1 mm diameter) rods in a mini-hot rod phantom. The results indicate that a tandem PET imaging scheme can be potentially employed in applications where high-resolution images over a small region are required.
虽然目前大多数商用正电子发射断层扫描(PET)扫描仪的性能足以满足许多标准临床应用,但一些特定任务可能需要专门的成像系统。该项目的目标是探索一种小型高分辨率原型系统获取PET图像的能力和局限性。该扫描仪由一对探测器组成。一个是小型探测器,由20×20阵列的0.7×0.7×3毫米(间距0.8毫米)的硅酸钇镥(LYSO)元件组成。闪烁体阵列与硅光电倍增管阵列耦合。第二个探测器是96×72阵列的2×2×15毫米(间距 = 2.1毫米)的LYSO元件,与位置灵敏光电倍增管(PSPMT)耦合。两个探测器之间的间距为180毫米。探测器相互符合工作。使用有限角度的最大似然期望最大化(MLEM)算法进行图像重建。对该设备的评估包括测量空间分辨率和作为距离函数的探测灵敏度。该系统的横向径向和切向空间分辨率的半高宽(FWHM)范围为0.6毫米至0.9毫米;轴向分辨率的FWHM范围为2.7毫米至4.6毫米。探测灵敏度范围为0.05%至0.28%。空间分辨率和视野随与小型探测器距离的变化而变化。串联探测器插件能够区分微型热棒模型中最小(直径1毫米)的棒。结果表明,串联PET成像方案可能适用于需要在小区域获取高分辨率图像的应用。