• DocumentCode
    44558
  • Title

    Combining Photonic Crystal and Optical Monte Carlo Simulations: Implementation, Validation and Application in a Positron Emission Tomography Detector

  • Author

    Thalhammer, Christof ; Breuer, Johannes ; Fuhrer, Thorsten ; Popescu, Adrian ; Hedler, Harry ; Walther, Thomas ; Niendorf, Thoralf

  • Author_Institution
    Berlin Ultrahigh Field Facility (B.U.F.F.), Max Delbruck Centre for Mol. Med., Berlin, Germany
  • Volume
    61
  • Issue
    6
  • fYear
    2014
  • fDate
    Dec. 2014
  • Firstpage
    3618
  • Lastpage
    3626
  • Abstract
    This paper presents a novel approach towards incorporating photonic crystals (PhCs) into optical Monte Carlo (MC) simulations. This approach affords modeling the full diffractive nature of PhCs including their reflection and transmission behavior as well as the manipulation of the photon trajectories through light scattering. The main purpose of this tool is to study the impact of PhCs on the light yield and timing performance of scintillator-based detectors for positron emission tomography (PET). To this end, the PhCs are translated into look-up tables and implemented into the optical MC algorithm. Our simulations are validated in optical experiments using PhC samples fabricated with electron beam lithography. The experimental results indicate that the simulations match the measurements within the accuracy of the experiments. The application of the combined simulation technique to a PET detector module predicts an increase of the total light yield by up to 23% for PhC coatings versus the reference without PhCs. Timing calculations reveal an improvement of the coincident resolving time by up to 6%. The results underline the potential of PhCs to improve light yield and timing of PET detector modules.
  • Keywords
    Monte Carlo methods; electron beam lithography; light scattering; photonic crystals; positron emission tomography; scintillation counters; PET detector modules; PhC coatings; electron beam lithography; light scattering; optical Monte Carlo simulation; optical experiment; photon trajectories; photonic crystal; positron emission tomography detector; scintillator-based detectors; timing calculation; transmission behavior; Monte Carlo methods; Optical refraction; Photonic crystals; Photonics; Positron emission tomography; Coincident resolving time; Monte Carlo simulations; photonic Crystals; positron emission tomography (PET); positron emission tomography (PET) detector; timing resolution;
  • fLanguage
    English
  • Journal_Title
    Nuclear Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9499
  • Type

    jour

  • DOI
    10.1109/TNS.2014.2365879
  • Filename
    6957622