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引用次数: 0
摘要
在这项工作中,我们研究了我们的连续微型晶体元件检测器(cMiCE)的性能特征。采用25毫米× 25毫米× 4毫米厚的LSO晶体和50毫米× 50毫米× 8毫米厚的LSYO晶体进行了评估。两个探测器都使用了64通道平板光电倍增管(PMT)。利用标准Anger定位和基于统计的定位(SBP)算法对探测器的固有空间分辨率进行了评估。我们还研究了施加在入口表面的不同反射材料对8mm LYSO晶体固有分辨率的影响。4mm厚LYSO晶体的平均能量分辨率为20%,8mm厚LYSO晶体的平均能量分辨率为16% - 21%。当Anger定位到晶体边缘3 mm以内时,4 mm厚晶体的平均固有空间分辨率为1.8 mm,当SBP定位到晶体边缘2 mm以内时,平均固有空间分辨率为1.14 mm。8mm厚晶体的平均固有空间分辨率在Anger定位到晶体边缘8 mm以内时为2.2 mm FWHM,在SBP定位到边缘2 mm以内时为1.3-1.5 mm FWHM(取决于所使用的反射材料)。报告的内在空间分辨率没有对点源大小进行校正。点光斑通量的FWHM为-0.52 mm。采用SBP算法后,cMiCE探测器的空间分辨率、定位结果的线性度和有效视场均有显著提高
Performance characteristics of continuous miniature crystal element (cMiCE) detectors
In this work, we investigate the performance characteristics of our continuous miniature crystal element detector (cMiCE). Versions with a 25 mm by 25 mm by 4 mm thick LSO crystal and with a 50 mm by 50 mm by 8 mm thick LSYO crystal were evaluated. Both detectors utilized a 64-channel flat panel photomultiplier tube (PMT). The intrinsic spatial resolution for the detectors was evaluated using standard Anger positioning and a statistics based positioning (SBP) algorithm. We also examined the effect different reflective materials applied on the entrance surface had on the intrinsic resolution for the 8 mm LYSO crystal. The average energy resolution was 20% for the 4 mm thick LSO crystal and 16% - 21% for the 8 mm thick LYSO crystal. The average intrinsic spatial resolution for the 4 mm thick crystal was 1.8 mm full width at half maximum (FWHM) for Anger positioning to within 3 mm of the crystal's edge and 1.14 mm FWHM for SBP to within 2 mm of the edge. The average intrinsic spatial resolution for the 8 mm thick crystal was 2.2 mm FWHM for Anger positioning to within 8 mm of the crystal's edge and 1.3-1.5 mm FWHM (depending on the reflective material used) for SBP to within 2 mm of the edge. Intrinsic spatial resolution is reported without correcting for point source size. The point spot flux had a FWHM of -0.52 mm. Using the SBP algorithm showed significant improvement in spatial resolution, linearity of positioning result, and effective field of view for our cMiCE detector