| Literature DB >> 33761476 |
Shirin Pourashraf1, Andrea Gonzalez-Montoro1, Jun Yeon Won2, Min Sun Lee3, Joshua W Cates1,4, Zhixiang Zhao5, Jae Sung Lee2, Craig S Levin1,6,7,8.
Abstract
We have developed a scalable detector readout design for a 100 ps coincidence time resolution (CTR) time of flight (TOF) positron emission tomography (PET) detector technology. The basic scintillation detectors studied in this paper are based on 2 × 4 arrays of 3 × 3 × 10 mm3'fast-LGSO:Ce' scintillation crystals side-coupled to 6 × 4 arrays of 3 × 3 mm2silicon photomultipliers (SiPMs). We employed a novel mixed-signal front-end electronic configuration and a low timing jitter Field Programming Gate Array-based time to digital converter for data acquisition. Using a22Na point source, >10 000 coincidence events were experimentally acquired for several SiPM bias voltages, leading edge time-pickoff thresholds, and timing channels. CTR of 102.03 ± 1.9 ps full-width-at-half-maximum (FWHM) was achieved using single 3 × 3 × 10 mm3'fast-LGSO' crystal elements, wrapped in Teflon tape and side coupled to a linear array of 3 SiPMs. In addition, the measured average CTR was 113.4 ± 0.7 ps for the side-coupled 2 × 4 crystal array. The readout architecture presented in this work is designed to be scalable to large area module detectors with a goal to create the first TOF-PET system with 100 ps FWHM CTR.Entities:
Keywords: FPGA-based TDC; coincidence time resolution; front-end electronics; positron emission tomography; scintillation crystal; silicon photomultipliers; time-of-flight
Mesh:
Year: 2021 PMID: 33761476 PMCID: PMC9569180 DOI: 10.1088/1361-6560/abf1bc
Source DB: PubMed Journal: Phys Med Biol ISSN: 0031-9155 Impact factor: 4.174