Literature DB >> 31851947

Experimental time resolution limits of modern SiPMs and TOF-PET detectors exploring different scintillators and Cherenkov emission.

Stefan Gundacker1, Rosana Martinez Turtos, Nicolaus Kratochwil, Rosalinde Hendrika Pots, Marco Paganoni, Paul Lecoq, Etiennette Auffray.   

Abstract

Solid state photodetectors like silicon photomultipliers (SiPMs) are playing an important role in several fields of medical imaging, life sciences and high energy physics. They are able to sense optical photons with a single photon detection time precision below 100 ps, making them ideal candidates to read the photons generated by fast scintillators in time of flight positron emission tomography (TOF-PET). By implementing novel high-frequency readout electronics, it is possible to perform a completely new evaluation of the best timing performance achievable with state-of-the-art analog-SiPMs and scintillation materials. The intrinsic SiPM single photon time resolution (SPTR) was measured with Ketek, HPK, FBK, SensL and Broadcom devices. Also, the best achieved coincidence time resolution (CTR) for these devices was measured with LSO:Ce:Ca of [Formula: see text] mm3 and [Formula: see text] mm3 size crystals. The intrinsic SPTR for all devices ranges between 70 ps and 135 ps FWHM when illuminating the entire [Formula: see text] mm2 or [Formula: see text] mm2 area. The obtained CTR with LSO:Ce:Ca of [Formula: see text] mm3 size ranges between 58 ps and 76 ps FWHM for the SiPMs evaluated. Bismuth Germanate (BGO), read out with state of-the-art NUV-HD SiPMs from FBK, achieved a CTR of 158 [Formula: see text] ps and 277 [Formula: see text] ps FWHM for [Formula: see text] mm3 and [Formula: see text] mm3 crystals, respectively. Other BGO geometries yielded 167 [Formula: see text] 3 ps FWHM for [Formula: see text] mm3 and 235 [Formula: see text] 5 ps FWHM for [Formula: see text] mm3 also coupled with Meltmount (n  =  1.582) and wrapped in Teflon. Additionally, the average number of Cherenkov photons produced by BGO in each 511 keV event was measured to be 17 [Formula: see text] 3 photons. Based on this measurement, we predict the limits of BGO for ultrafast timing in TOF-PET with Monte Carlo simulations. Plastic scintillators (BC422, BC418), BaF2, GAGG:Ce codoped with Mg and CsI:undoped were also tested for TOF performance. Indeed, BC422 can achieve a CTR of 35 [Formula: see text] 2 ps FWHM using only Compton interactions in the detector with a maximum deposited energy of 340 keV. BaF2 with its fast cross-luminescence enables a CTR of 51 [Formula: see text] 5 ps FWHM when coupled to VUV-HD SiPMs from FBK, with only  ∼22% photon detection efficiency (PDE). We summarize the measured CTR of the various scintillators and discuss their intrinsic timing performance.

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Year:  2020        PMID: 31851947     DOI: 10.1088/1361-6560/ab63b4

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  15 in total

Review 1.  Photon counting detectors and their applications ranging from particle physics experiments to environmental radiation monitoring and medical imaging.

Authors:  Ryosuke Ota
Journal:  Radiol Phys Technol       Date:  2021-03-19

Review 2.  Update on latest advances in time-of-flight PET.

Authors:  Suleman Surti; Joel S Karp
Journal:  Phys Med       Date:  2020-11-16       Impact factor: 2.685

3.  Roadmap toward the 10 ps time-of-flight PET challenge.

Authors:  Paul Lecoq; Christian Morel; John O Prior; Dimitris Visvikis; Stefan Gundacker; Etiennette Auffray; Peter Križan; Rosana Martinez Turtos; Dominique Thers; Edoardo Charbon; Joao Varela; Christophe de La Taille; Angelo Rivetti; Dominique Breton; Jean-François Pratte; Johan Nuyts; Suleman Surti; Stefaan Vandenberghe; Paul Marsden; Katia Parodi; Jose Maria Benlloch; Mathieu Benoit
Journal:  Phys Med Biol       Date:  2020-10-22       Impact factor: 3.609

4.  Multiplexing Readout for Time-of-Flight (TOF) PET Detectors Using Striplines.

Authors:  Heejong Kim; Chien-Min Kao; Yuexuan Hua; Qingguo Xie; Chin-Tu Chen
Journal:  IEEE Trans Radiat Plasma Med Sci       Date:  2021-01-13

5.  Study of Čerenkov Light Emission in the Semiconductors TlBr and TlCl for TOF-PET.

Authors:  Gerard Ariño-Estrada; Emilie Roncali; Aaron R Selfridge; Junwei Du; Jaroslaw Glodo; Kanai S Shah; Simon R Cherry
Journal:  IEEE Trans Radiat Plasma Med Sci       Date:  2020-09-17

6.  Reconstruction-free positron emission imaging.

Authors:  Suleman Surti; Joel S Karp
Journal:  Nat Photonics       Date:  2021-11-29       Impact factor: 39.728

7.  A depth-encoding PET detector for high resolution PET using 1 mm SiPMs.

Authors:  Junwei Du; Xiaowei Bai; Simon R Cherry
Journal:  Phys Med Biol       Date:  2020-08-19       Impact factor: 3.609

8.  Quantitative PET in the 2020s: a roadmap.

Authors:  Steven R Meikle; Vesna Sossi; Emilie Roncali; Simon R Cherry; Richard Banati; David Mankoff; Terry Jones; Michelle James; Julie Sutcliffe; Jinsong Ouyang; Yoann Petibon; Chao Ma; Georges El Fakhri; Suleman Surti; Joel S Karp; Ramsey D Badawi; Taiga Yamaya; Go Akamatsu; Georg Schramm; Ahmadreza Rezaei; Johan Nuyts; Roger Fulton; André Kyme; Cristina Lois; Hasan Sari; Julie Price; Ronald Boellaard; Robert Jeraj; Dale L Bailey; Enid Eslick; Kathy P Willowson; Joyita Dutta
Journal:  Phys Med Biol       Date:  2021-03-12       Impact factor: 4.174

9.  Improvement of Spatial Resolution with Iterative PET Reconstruction using UltraFast TOF.

Authors:  Maxime Toussaint; Roger Lecomte; Jean-Pierre Dussault
Journal:  IEEE Trans Radiat Plasma Med Sci       Date:  2020-10-26

10.  Yttrium-90 quantitative phantom study using digital photon counting PET.

Authors:  Joey Labour; Philippe Boissard; David Sarrut; Jean-Noël Badel; Thomas Baudier; Fouzi Khayi; David Kryza; Pascale Veyrat Durebex; Sandrine Parisse-Di Martino; Thomas Mognetti
Journal:  EJNMMI Phys       Date:  2021-07-27
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