Published February 1, 2011 | Version v1
Report

High-speed digitization readout of silicon photomultipliers for time of flight positron emission tomography

  • 1. Fermi National Accelerator Lab., Batavia, IL (United States)
  • 2. Univ. of Chicago, Chicago, IL (United States)
  • 3. State University of New York at Buffalo, NY (United States)
  • 4. University of Puerto Rico at Mayaguez (Puerto Rico)
  • 5. STMicroelectronics, Catania (Italy)

Description

We report on work to develop a system with about 100 picoseconds (ps) time resolution for time of flight positron emission tomography (TOF-PET). The chosen photo detectors for the study were Silicon Photomultipliers (SiPM's). This study was based on extensive experience in studying timing properties of SiPM's. The readout of these devices used the commercial high speed digitizer DRS4. We applied different algorithms to get the best time resolution of 155 ps Guassian (sigma) for a LYSO crystal coupled to a SiPM. We consider the work as a first step in building a prototype TOF-PET module. The field of positron-emission-tomography (PET) has been rapidly developing. But there are significant limitations in how well current PET scanners can reconstruct images, related to how fast data can be acquired, how much volume they can image, and the spatial and temporal resolution of the generated photons. Typical modern scanners now include multiple rings of detectors, which can image a large volume of the patient. In this type of scanner, one can treat each ring as a separate detector and require coincidences only within the ring, or treat the entire region viewed by the scanner as a single 3 dimensional volume. This 3d technique has significantly better sensitivity since more photon pair trajectories are accepted. However, the scattering of photons within the volume of the patient, and the effect of random coincidences limits the technique. The advent of sub-nanosecond timing resolution detectors means that there is potentially much better rejection of scattered photon events and random coincidence events in the 3D technique. In addition, if the timing is good enough, then the origin of photons pairs can be determined better, resulting in improved spatial resolution - so called 'Time-of-Flight' PET, or TOF-PET. Currently a lot of activity has occurred in applications of SiPMs for TOF-PET. This is due to the devices very good time resolution, low profile, lack of high voltage needed, and their non-sensitivity to magnetic fields. While investigations into this technique have begun elsewhere, we feel that the extensive SiPM characterization and data acquisition expertise of Fermilab, and the historical in-depth research of PET imaging at University of Chicago will combine to make significant strides in this field. We also benefit by a working relationship with the SiPM producer STMicroelectronics (STM).

Availability note (English)

Available from http://lss.fnal.gov/cgi-bin/find_paper.pl?tm-2487.pdf; PURL: https://www.osti.gov/servlets/purl/1012683-JdhELI/

Additional details

Publishing Information

Imprint Pagination
10 p.
Report number
FERMILAB-TM--2487-PPD

Optional Information

Contract/Grant/Project number
AC02-76CH03000
Notes
doi 10.2172/1012683
Funding organization
DOE Office of Science (United States)