DocumentCode :
1763349
Title :
Stimulation of Radiation Damage Recovery of Lead Tungstate Scintillation Crystals Operating in a High Dose-Rate Radiation Environment
Author :
Borisevitch, A.E. ; Dormenev, V.I. ; Fedorov, A.A. ; Korjik, M.V. ; Kuske, Till ; Mechinsky, V. ; Missevitch, O.V. ; Novotny, Rainer W. ; Rusack, R. ; Singovski, A.V.
Author_Institution :
Inst. for Nucl. Problems, Minsk, Belarus
Volume :
60
Issue :
2
fYear :
2013
fDate :
41365
Firstpage :
1368
Lastpage :
1372
Abstract :
Scintillation crystals of the lead tungstate family - PWO, PWO-II - became widely used in electromagnetic calorimeters in high energy physics experiments at high-luminosity accelerator facilities. During the operation of electromagnetic calorimeters a degradation of the optical transmission of these crystals occurs due to creation of color centers. In addition to the recharge by γ-radiation of the point structure defects, which exist a priori in the crystals, additional damage occurs to the crystal matrix due to the interaction of hadrons. Thus radiation induced optical absorption can limit the energy resolution of the calorimeter. To reduce the recharge by γ-radiation we have both minimized the concentration of point structure defects during manufacture, and used light from visible to infrared to stimulate the recovery of the color centers. In this paper we show that method of stimulated recovery is also applicable to recover from degradation of the crystal´s optical transmission caused by hadron interactions. The mechanisms of the damage under γ- and hadron-irradiation are discussed.
Keywords :
calorimetry; colour centres; gamma-ray effects; lead compounds; light transmission; point defects; scintillation; PbWO4; color centers; electromagnetic calorimetry; energy resolution; gamma-radiation; hadron-irradiation; high-luminosity accelerator facilities; infrared light; lead tungstate scintillation crystals; optical transmission; point structure defects; radiation damage recovery; radiation induced optical absorption; visible light; Absorption; Annealing; Color; Crystals; Protons; Radiation effects; Stimulated emission; IEEE Nuclear and Space Radiation Effects Conference; IEEE Transactions on Nuclear Science; radiation effects; radiation effects in microelectronics: radiation hardening;
fLanguage :
English
Journal_Title :
Nuclear Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9499
Type :
jour
DOI :
10.1109/TNS.2013.2243164
Filename :
6482281
Link To Document :
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