• DocumentCode
    77323
  • Title

    Development of Transparent Ceramic Ce-Doped Gadolinium Garnet Gamma Spectrometers

  • Author

    Cherepy, Nerine J. ; Seeley, Z.M. ; Payne, Stephen A. ; Beck, P.R. ; Drury, O.B. ; O´Neal, S.P. ; Figueroa, K.M. ; Hunter, Steven ; Ahle, Larry ; Thelin, P.A. ; Stefanik, T. ; Kindem, J.

  • Author_Institution
    Lawrence Livermore Nat. Lab., Livermore, CA, USA
  • Volume
    60
  • Issue
    3
  • fYear
    2013
  • fDate
    Jun-13
  • Firstpage
    2330
  • Lastpage
    2335
  • Abstract
    Transparent polycrystalline ceramic scintillators based on the garnet structure and incorporating gadolinium for high stopping power are being developed for use in gamma spectrometers. Optimization of energy resolution for gamma spectroscopy involves refining the material composition for high stopping and high light yield, developing ceramics fabrication methodology for material homogeneity, as well as selecting the size and geometry of the scintillator to match the photodetector characteristics and readout electronics. We have demonstrated energy resolution of 4% at 662 keV for 0.05 cm3 GYGAG(Ce) ceramics with photodiode readout, and 4.9% resolution at 662 keV for 18 cm 3 GYGAG(Ce) ceramics and PMT readout. Comparative gamma spectra acquired with GYGAG(Ce) and NaI(Tl) depict the higher resolution of GYGAG(Ce) for radioisotope identification applications. Light yield non-proportionality of garnets fabricated following different methods reveal that the fundamental shapes of the light yield dependence on energy are not intrinsic to the crystal structure, but may instead depend on trap state distributions. With exposure to 9 MeV Brehmsstrahlung radiation, we also find that GYGAG(Ce) ceramics exhibit excellent radiation hardness.
  • Keywords
    ceramics; cerium; energy loss of particles; gadolinium compounds; gamma-ray spectra; gamma-ray spectrometers; gamma-ray spectroscopy; garnets; nuclear electronics; optimisation; photodetectors; photodiodes; radiation hardening; radioisotopes; readout electronics; solid scintillation detectors; yttrium compounds; Brehmsstrahlung radiation; GYGAG(Ce) ceramics; Gd1.5Y1.5Ga2.2Al2.8O:Ce; NaI(Tl); PMT readout; ceramic fabrication methodology; crystal structure; electron volt energy 9 MeV; energy resolution; gamma spectra; gamma spectroscopy; garnet structure; high light yield; high stopping power; light yield dependence; light yield nonproportionality; material composition; material homogeneity; optimization; photodetector characteristics; photodiode readout; radiation hardness; radioisotope identification applications; readout electronics; scintillator geometry; scintillator size; transparent ceramic Ce-doped gadolinium garnet gamma spectrometers; transparent polycrystalline ceramic scintillators; trap state distributions; Ceramics; Crystals; Energy resolution; Fabrication; Garnets; Photodiodes; Spectroscopy; Gamma-ray spectroscopy; garnets; scintillators;
  • fLanguage
    English
  • Journal_Title
    Nuclear Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9499
  • Type

    jour

  • DOI
    10.1109/TNS.2013.2261826
  • Filename
    6520005