Lee Daehee, Kwon Sun Il
Department of Biomedical Engineering, University of California, Davis, One Shields Avenue, Davis, CA 95616, United States of America.
Phys Med Biol. 2025 Mar 28;70(7). doi: 10.1088/1361-6560/adc362.
We present a novel field-programmable gate array (FPGA)-based bismuth germanate (BGO) time-of-flight (TOF) digitizer, implemented on an FPGA (XC7VX485T-2FFG1761C, Xilinx). This digitizer is designed to address the recently highlighted characteristics of BGO, which generates both scintillation and prompt Cerenkov photons when a 511 keV photon interacts with BGO. The developed digitizer independently processes these two types of photons for precise energy and timing measurements. The digitizer incorporates a noise-resistant binary counter that measures energy signals using the time-over-threshold (TOT) method. For timing measurements, we employ an embedded dual-side monitoring time-to-digital converter, which efficiently captures timing information while maintaining low resource usage. We validated the efficacy of our FPGA-based TOF digitizer through extensive experiments, including both electrical testing and coincidence measurements using BGO pixels. Our evaluations of TOT energy and timing performance utilized two 3 × 3 × 20 mmBGO pixels coupled to CHK-HD MT silicon photomultipliers. The digitizer achieved a coincidence timing resolution (CTR) of 407 ps full width at half maximum (FWHM) for events within the full width at tenth maximum of the photopeak in the measured TOT energy spectrum. Notably, when measured with an oscilloscope, the same detector pair exhibited a CTR of 403 ps FWHM, confirming that the performance of the developed digitizer is comparable to that of an oscilloscope. With its low resource usage, our design offers significant potential for scalability, making it particularly promising for multi-channel BGO-based PET systems.
我们展示了一种基于现场可编程门阵列(FPGA)的锗酸铋(BGO)飞行时间(TOF)数字化仪,它是在FPGA(赛灵思XC7VX485T-2FFG1761C)上实现的。该数字化仪旨在解决最近凸显的BGO的特性,即当511 keV光子与BGO相互作用时,BGO会产生闪烁光子和瞬发切伦科夫光子。所开发的数字化仪独立处理这两种类型的光子,以进行精确的能量和时间测量。该数字化仪集成了一个抗噪声二进制计数器,它使用过阈值时间(TOT)方法测量能量信号。对于时间测量,我们采用了一个嵌入式双侧监测时间数字转换器,它在保持低资源使用的同时有效地捕获时间信息。我们通过广泛的实验验证了基于FPGA的TOF数字化仪的有效性,包括电气测试和使用BGO像素的符合测量。我们对TOT能量和时间性能的评估使用了两个与CHK-HD MT硅光电倍增管耦合的3×3×20 mm BGO像素。对于在测量的TOT能量谱中光峰十分之一最大宽度内的事件,该数字化仪实现了407 ps半高全宽(FWHM)的符合时间分辨率(CTR)。值得注意的是,当用示波器测量时,同一探测器对的CTR为403 ps FWHM,这证实了所开发数字化仪的性能与示波器相当。由于其低资源使用,我们的设计具有显著的可扩展性潜力,使其对于基于多通道BGO的PET系统特别有前景。