Towards a Full-Flexible and Fast-Prototyping TOF-PET Block Detector Based on TDC-on-FPGA

Journal Article (2018)
Author(s)

Esteban Venialgo (TU Delft - Optical Technologies)

Nicola Lusardi (Politecnico di Milano)

Fabio Garzetti (Politecnico di Milano)

Angelo Geraci (Politecnico di Milano)

Stefan E. Brunner (TU Delft - RST/Medical Physics & Technology)

Dennis R. Schaart (TU Delft - RST/Medical Physics & Technology)

Edoardo Charbon (École Polytechnique Fédérale de Lausanne)

DOI related publication
https://doi.org/10.1109/TRPMS.2018.2874358 Final published version
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Publication Year
2018
Language
English
Bibliographical Note
Green Open Access added to TU Delft Institutional Repository ‘You share, we take care!’ – Taverne project https://www.openaccess.nl/en/you-share-we-take-care Otherwise as indicated in the copyright section: the publisher is the copyright holder of this work and the author uses the Dutch legislation to make this work public.
Journal title
IEEE Transactions on Radiation and Plasma Medical Sciences
Issue number
5
Volume number
3
Pages (from-to)
538-548
Downloads counter
184
Collections
Institutional Repository
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Abstract

Typically, a time-of-flight (TOF) PET block detector is built using application-specific integrated circuits (ASICs), since they integrate a high number of channels at a reasonable power consumption and into a small area. However, ASICs’ flexibility is limited and prototyping times are long because a semiconductor fabrication process is required in every design iteration. Alternatively, fast terminal (FT) silicon photomultipliers (SiPMs) require a simplified analog front-end in order to achieve time-of-flight (TOF) accuracy. In addition, field-programmable gate arrays (FPGAs) can allocate time-to-digital converters (TDCs) as well as complex digital readout logics. In this work, we propose building TOF-PET block detectors based on FPGAs, FT-SiPMs, and minimal amount of off-the-shelf components. In this way, TOF-PET accuracy is achieved with a full-flexible and fast prototyping solution. We evaluated the coincidence resolving time (CRT), performance degradations due to channel multiplexing, energy resolution, and scintillator pixel encoding performance of SiPM arrays utilizing the proposed approach. Experimental results show minimal timing degradations, when multiplexing FTs. Moreover, simulation results show a low reduction in the singles count rate of multiplexed channels at typical brain-PET radioactive doses.

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