• DocumentCode
    57389
  • Title

    LSO/LYSO Crystals for Calorimeters in Future HEP Experiments

  • Author

    Liyuan Zhang ; Rihua Mao ; Fang Yang ; Ren-yuan Zhu

  • Author_Institution
    California Inst. of Technol., Pasadena, CA, USA
  • Volume
    61
  • Issue
    1
  • fYear
    2014
  • fDate
    Feb. 2014
  • Firstpage
    483
  • Lastpage
    488
  • Abstract
    Because of their high stopping power (X0=1.14 cm), fast (τ = 40 ns) bright (4 times BGO) scintillation with small temperature coefficient (-0.2%/°C) and superb radiation hardness, LSO/LYSO crystals are chosen to construct electromagnetic calorimeters (ECAL) of total absorption nature. One critical issue for this application is the light response uniformity (LRU) of long crystal bars with tapered geometry, which is affected by the non-uniform light yield along the crystal, the self-absorption and the optical focusing effect. Following a ray-tracing simulation study, an uniformization method was developed by roughening one side surface with LRU of better than 3% achieved. LSO/LYSO crystals are also proposed as the active material for a sampling ECAL for future HEP experiments in severe radiation environment. Preliminary designs with Pb or W absorber are described. Measurements of light collection efficiency (LCE) for prototype Shashlik cells with wavelength shifting fiber readout are presented. Future development on LSO/LYSO crystal based sampling ECAL is discussed.
  • Keywords
    nuclear electronics; optical focusing; particle calorimetry; ray tracing; readout electronics; solid scintillation detectors; BGO; LSO/LYSO crystals; Pb absorber; W absorber; active material; electromagnetic calorimeters; fast bright scintillation; future HEP experiments; high stopping power; light collection efficiency; light response uniformity; long crystal bars; nonuniform light yield; optical focusing effect; prototype Shashlik cells; radiation environment; radiation hardness; ray-tracing simulation; sampling ECAL; self-absorption; small temperature coefficient; tapered geometry; total absorption; uniformization method; wavelength shifting fiber readout; Absorption; Cerium; Crystals; Optical surface waves; Photonics; Rough surfaces; Surface roughness; Crystal; Shashlik; emission; light attenuation length; light output; light response uniformity (LRU); ray-tracing; sampling calorimeter; scintillator; transmittance;
  • fLanguage
    English
  • Journal_Title
    Nuclear Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9499
  • Type

    jour

  • DOI
    10.1109/TNS.2013.2279993
  • Filename
    6636093