首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Design, evaluation and initial imaging results of a PET insert based on strip-line readout for simultaneous PET/MRI
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Design, evaluation and initial imaging results of a PET insert based on strip-line readout for simultaneous PET/MRI

机译:基于带状线读数的PET插入物的设计,评估和初始成像结果,可同时进行PET / MRI

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We present the development of a PET insert system for potential simultaneous PET/MR imaging using a 9.4 T small animal MRI scanner to test our system. The detectors of the system adopt a strip-line based multiplexing readout method for SiPM signals. In this readout, multiple SiPM outputs in a row share a common strip-line. The position information about a hit SiPM is encoded in the propagation time difference of the signals arriving at the two ends of the strip-line. The use of strip-lines allows us to place the data acquisition electronics remotely from the detector module to greatly simplify the design of the detector module and minimize the mutual electromagnetic interference. The prototype is comprised of 14 detector modules, each of which consists of an 8x4 LYSO scintillator array (each LYSO crystal is 3x3x10 mm3) coupled to two units of Hamamatsu MPPC arrays (4x4, 3.2 mm pitch) that are mounted on a strip-line board. On the strip-line board, outputs of the 32 SiPMs are routed to 2 strip-lines so that 16 SiPM signals share a strip-line. The detector modules are installed inside a plastic cylindrical supporting structure with an inner and outer diameter of 60 mm and 115 mm, respectively, to fit inside a Bruker BioSpec 9.4 T MR scanner. The axial field of view of the prototype is 25.4 mm. The strip-lines were extended by using 5-meter cables to a sampling data acquisition (DAQ) board placed outside the magnet. The detectors were not shielded in the interest of investigating how they may affect and be affected by the MRI. Experimental tests were conducted to evaluate detection performance, and phantom and animal imaging were carried out to assess the spatial resolution and the MR compatibility of the PET insert. Initial results are encouraging and demonstrate that the prototype insert PET can potentially be used for PET/MR imaging if appropriate shielding will be implemented for minimizing the mutual interference between the PET and MRI systems.
机译:我们介绍了使用9.4 T小动物MRI扫描仪对潜在的同时进行PET / MR成像的PET插入系统的开发,以测试我们的系统。该系统的检测器对SiPM信号采用基于带状线的多路复用读出方法。在此读数中,一行中的多个SiPM输出共享一条公共带状线。关于命中SiPM的位置信息被编码在到达带状线的两端的信号的传播时间差中。带状线的使用使我们可以将数据采集电子设备放置在远离探测器模块的位置,从而大大简化了探测器模块的设计,并最大程度地减少了相互的电磁干扰。该原型机由14个检测器模块组成,每个检测器模块均由一个8x4 LYSO闪烁体阵列(每个LYSO晶体为3x3x10 mm3)组成,该阵列与安装在带状线上的两个滨松MPPC阵列(4x4、3.2 mm间距)耦合板。在带状线板上,将32个SiPM的输出路由到2条带状线,以便16个SiPM信号共享一条带状线。探测器模块安装在塑料圆柱支撑结构内,其内径和外径分别为60 mm和115 mm,以安装在Bruker BioSpec 9.4 T MR扫描仪内。原型的轴向视场为25.4 mm。通过使用5米长的电缆将带状线延伸到放置在磁体外部的采样数据采集(DAQ)板。检测器没有被屏蔽,目的是研究它们如何影响MRI和如何受MRI影响。进行了实验测试以评估检测性能,并进行了幻影和动物成像以评估PET插入物的空间分辨率和MR兼容性。初步结果令人鼓舞,并表明,如果将实施适当的屏蔽措施以最大程度地减少PET和MRI系统之间的相互干扰,则可以将原型插入物PET潜在地用于PET / MR成像。

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