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Pixelated Columnar CsI:Tl Scintillator for High Resolution Radiography and Cone-Beam CT

机译:用于高分辨率射线照相和锥束CT的像素化柱状CsI:Tl闪烁体

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Microcolumnar CsI:T1 scintillator screens have been the gold standard in X-ray imaging for many years due to their high density, high atomic number, and scintillation efficiency. The structured screens provide an improvement in performance by channeling the light to the detector, improving detection efficiency and spatial resolution. We have taken this concept a step further by laser-machining the CsI:T1 scintillator to provide pixels that match the detector pixels. This allows for still thicker CsI:T1 layers up to 700 μm pixelated with pitch of 100 μm to match CMOS flat panel pixels, thus improving X-ray absorption and resolution. We are investigating the applications of CMOS detectors with pixelated scintillators for imaging of bone microarchitecture on diagnostic Cone Beam CT (CBCT) systems to provide improved quantitative metrics for diagnosis of osteoporosis and osteoarthritis.The scintillator design includes reflective coatings applied to the laser-cut grooves to improve optical isolation between pixels. Such coatings are created by atomic layer deposition (ALD), a unique approach, which permits formation of reflectors over inter-pixel grooves with aspect ratios as high as 140:1. Here we present initial results quantifying performance gains in CMOS detector resolution and their impact on the quality of bone microstructure segmentation. We demonstrate 77% gain in spatial resolution at 2 lp/mm and extension of the limiting resolution from 3 lp/mm to 4.5 lp/mm for the CMOS detector with a pixelated screen compared to a commercial sensor. In a bench-top CBCT study emulating diagnostic systems for orthopedic applications (extremity CBCT), we achieved >0.75 correlations in metrics of trabecular microarchitecture between pixelated CsI:Tl based CBCT and gold-standard micro-CT. The pixelated scintillator is expected to have significant impact for many other applications including mammography and digital radiography, where resolution and dose efficiency (DQE) of the detector are of critical importance.
机译:微柱状CsI:T1闪烁体筛网由于其高密度,高原子序数和闪烁效率,多年来一直是X射线成像的金标准。通过将光引导到检测器,结构化的屏幕可提高性能,从而提高检测效率和空间分辨率。我们通过激光加工CsI:T1闪烁体以提供与检测器像素匹配的像素,使这一概念更进一步。这允许以100μm的间距像素化高达700μm的更厚的CsI:T1层,以匹配CMOS平板像素,从而提高了X射线的吸收和分辨率。我们正在研究具有像素化闪烁体的CMOS检测器在诊断性锥束CT(CBCT)系统上对骨微结构成像的应用,以提供改进的定量指标来诊断骨质疏松症和骨关节炎。闪烁体设计包括应用于激光切割凹槽的反射涂层改善像素之间的光学隔离。此类涂层是通过原子层沉积(ALD)(一种独特的方法)创建的,该方法允许在像素间凹槽上以高宽比高达140:1的高度形成反射器。在这里,我们介绍了量化CMOS检测器分辨率的性能提升及其对骨微结构分割质量的影响的初步结果。对于商用像素传感器,具有像素化屏幕的CMOS检测器,我们证明了2 lp / mm的空间分辨率提高了77%,极限分辨率从3 lp / mm扩展到4.5 lp / mm。在模拟骨科应用诊断系统(肢体CBCT)的台式CBCT研究中,我们在基于像素化CsI:Tl的CBCT和金标准微型CT之间的小梁微体系结构指标中实现了> 0.75的相关性。像素化闪烁体有望对包括乳腺摄影和数字射线照相在内的许多其他应用产生重大影响,在这些应用中,探测器的分辨率和剂量效率(DQE)至关重要。

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