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A prototype of very high-resolution small animal PET scanner using silicon pad detectors

机译:使用硅垫检测器的超高分辨率小型动物PET扫描仪的原型

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摘要

A very high-resolution small animal positron emission tomograph (PET), which can achieve sub-millimeter spatial resolution, is being developed using silicon pad detectors. The prototype PET for a single slice instrument consists of two 1 mm thick silicon pad detectors, each containing a 32 × 16 array of 1.4 × 1.4 mm pads readout with four VATAGP3 chips which have 128 channels low-noise self-triggering ASIC in each chip, coincidence units, a source turntable and tungsten slice collimator. The silicon detectors were located edgewise on opposite sides of a 4 cm field-of-view to maximize efficiency. Energy resolution is dominated by electronic noise, which is 0.98% (1.38 keV) FWHM at 140.5 keV. Coincidence timing resolution is 82.1 ns FWHM and coincidence efficiency was measured to be 1.04 × 10~(-3)% from two silicon detectors with annihilation photons of ~(18)F source. Image data were acquired and reconstructed using conventional 2-D filtered-back projection (FBP) and a maximum likelihood expectation maximization (ML-EM) method. Image resolution of approximately 1.45 mm FWHM is obtained from 1-D profile of 1.1mm diameter ~(18)F line source image. Even better resolution can be obtained with smaller detector element sizes. While many challenges remain in scaling up the instrument to useful efficiency including densely packed detectors and significantly improved timing resolution, performance of the test setup in terms of easily achieving sub-millimeter resolution is compelling.
机译:使用硅垫检测器,正在开发一种可以实现亚毫米空间分辨率的超高分辨率小动物正电子发射断层扫描仪(PET)。用于单片仪器的原型PET由两个1 mm厚的硅焊盘检测器组成,每个检测器包含一个32×16的1.4×1.4 mm焊盘阵列,其中包含四个VATAGP3芯片,每个芯片均具有128通道低噪声自触发ASIC。 ,重合单元,源转盘和钨片准直仪。硅探测器位于4 cm视场的相对侧边,以最大程度地提高效率。能量分辨率主要由电子噪声控制,在140.5 keV时为0.98%(1.38 keV)FWHM。重合时序分辨率为82.1 ns FWHM,使用两个〜灭的光子为〜(18)F源的硅探测器测得的重合效率为1.04×10〜(-3)%。使用常规的二维反滤波投影(FBP)和最大似然期望最大化(ML-EM)方法获取并重建图像数据。从1.1mm直径〜(18)F线源图像的一维轮廓获得大约1.45 mm FWHM的图像分辨率。较小的探测器元件尺寸可以获得更好的分辨率。在将仪器扩展到有用的效率方面仍然存在许多挑战,包括密密麻麻的检测器和显着提高的定时分辨率,但在轻松实现亚毫米分辨率方面,测试设置的性能令人信服。

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