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High position resolution gamma-ray imagers consisting of a monolithic MPPC array with submillimeter pixelized scintillator crystals

机译:高位置分辨率伽马射线成像,由单片MPPC阵列组成,具有亚丘疹像素化闪烁体晶体

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We report on the development of two versatile, high spatial resolution gamma-ray imagers for medical imaging. One is a compact gamma-ray camera, the other is a tweezers type coincidence imaging system. These applications consisting of a large-area monolithic Multi-Pixel Photon Counter (MPPC) and submillimeter pixelized scintillator matrices. The MPPC array has 4×4 channels with a three-side buttable, very compact package. Each channel has a photosensitive area of 3 x 3 mm~2 and 3600 Geiger mode avalanche photodiodes (APD). For a typical operational gain of 7.5 x 10~5 at + 20 degrees, gain fluctuation over the entire MPPC device is only ± 5.6%, and dark count rates (as measured at the 1 p.e. level) amount to ≤ 400 kcps per channel. We particularly selected Ce-doped (Lu,Y)_2(SiO_4)O (Ce:LYSO) and a brand-new scintillator, Ce-doped Gd_3Al_2Ga_3O_(12) (Ce:GAGG) due to their high light yield and density. To improve the spatial resolution, these scintillators were fabricated to 22 × 22 or 15 × 15 matrices of 0.5 x 0.5 mm~2 pixels. These scintillator matrices were coupled to the MPPC array with an acrylic light guide with 1 mm thick, and signals were read out using the charge division resistor network, which compiles signals into four position-encoded analog outputs. The spatial resolution of 1.2 mm was achieved with the compact gamma-ray camera using collimated ~(57)Co source, and a radiography image of a bearing was successfully obtained. On the other hand, the spatial resolution of 1.1 mm was achieved with the coincidence imaging system using a ~(22)Na source. Furthermore the experimental measurements for a PET scanner was performed, and the spatial resolution of 0.91 mm was achieved. These results suggest that the gamma-ray imagers has excellent potential for their uses as a high spatial medical imaging, and also be promising for positron emission tomography (PET).
机译:我们报告了医学成像的两个多功能高空间分辨率伽马射线成像仪的发展。一个是一个紧凑的伽马射线照相机,另一个是镊子型巧合成像系统。这些应用包括大面积单片多像素光子计数器(MPPC)和亚倍数仪像素化闪烁体矩阵。 MPPC阵列具有4×4通道,具有三侧可靠,非常紧凑的封装。每个通道具有3×3mm〜2和3600 Geiger模式雪崩光电二极管(APD)的光敏区域。对于+ 20度的典型操作增益为7.5×10〜5,整个MPPC装置上的增益波动仅为±5.6%,并且暗计数率(如在1 p.e.水平上测量)的数量为≤每通道≤400kcps。我们特别选择CE掺杂(LU,Y)_2(SIO_4)O(CE:LYSO)和一个全新的闪烁体,由于它们的高光产量和密度而导致的全新的闪烁体,CE掺杂GD_3AL_2GA_3O_(12)(CE:GAGG)。为了提高空间分辨率,这些闪烁体制造成22×22或15×15矩阵,为0.5×0.5mm〜2像素。这些闪烁体矩阵与具有1mm厚的丙烯酸光导耦合到MPPC阵列,使用电荷分割电阻网络读出信号,该电荷分割电阻网络将信号编译成四个位置编码的模拟输出。使用准直〜(57)CO源的紧凑型伽马射线相机实现了1.2mm的空间分辨率,成功获得轴承的射线照相图像。另一方面,使用〜(22)NA源的重合成像系统实现了1.1mm的空间分辨率。此外,进行PET扫描仪的实验测量,实现了0.91mm的空间分辨率。这些结果表明,伽马射线成像仪对其用作高空间医学成像具有优异的潜力,并且对正电子发射断层扫描(PET)也是有希望的。

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