De Lorenzo G, Chmeissani M, Uzun D, Kolstein M, Ozsahin I, Mikhaylova E, Arce P, Cañadas M, Ariño G, Calderón Y
Institut de Física d'Altes Energies (IFAE), Universitat Autónoma de Barcelona (UAB), 08193 Bellaterra (Barcelona), Spain.
J Instrum. 2013 Jan;8. doi: 10.1088/1748-0221/8/01/C01030.
A positron emission mammograph (PEM) is an organ dedicated positron emission tomography (PET) scanner for breast cancer detection. State-of-the-art PEMs employing scintillating crystals as detection medium can provide metabolic images of the breast with significantly higher sensitivity and specificity with respect to standard whole body PET scanners. Over the past few years, crystal PEMs have dramatically increased their importance in the diagnosis and treatment of early stage breast cancer. Nevertheless, designs based on scintillators are characterized by an intrinsic deficiency of the depth of interaction (DOI) information from relatively thick crystals constraining the size of the smallest detectable tumor. This work shows how to overcome such intrinsic limitation by substituting scintillating crystals with pixelated CdTe detectors. The proposed novel design is developed within the Voxel Imaging PET (VIP) Pathfinder project and evaluated via Monte Carlo simulation. The volumetric spatial resolution of the VIP-PEM is expected to be up to 6 times better than standard commercial devices with a point spread function of 1 mm full width at half maximum (FWHM) in all directions. Pixelated CdTe detectors can also provide an energy resolution as low as 1.5% FWHM at 511 keV for a virtually pure signal with negligible contribution from scattered events.
正电子发射乳腺成像仪(PEM)是一种专门用于乳腺癌检测的正电子发射断层扫描(PET)扫描仪。采用闪烁晶体作为探测介质的先进PEM,相对于标准全身PET扫描仪,能够提供灵敏度和特异性显著更高的乳腺代谢图像。在过去几年中,晶体PEM在早期乳腺癌的诊断和治疗中变得越来越重要。然而,基于闪烁体的设计存在一个固有缺陷,即来自相对较厚晶体的相互作用深度(DOI)信息不足,这限制了最小可检测肿瘤的大小。这项工作展示了如何通过用像素化碲化镉(CdTe)探测器替代闪烁晶体来克服这种固有局限性。所提出的新颖设计是在体素成像PET(VIP)探索者项目中开发的,并通过蒙特卡罗模拟进行评估。VIP-PEM的体积空间分辨率预计比标准商业设备高6倍,在所有方向上的点扩散函数半高宽(FWHM)为1毫米。像素化CdTe探测器在511keV时还能提供低至1.5% FWHM的能量分辨率,对于几乎纯净的信号,散射事件的贡献可忽略不计。