DocumentCode
76568
Title
Multiscale Approach to Estimation of Scintillation Characteristics
Author
Vasil´ev, A.N. ; Gektin, A.V.
Author_Institution
Inst. of Nucl. Phys., Lomonosov Moscow State Univ., Moscow, Russia
Volume
61
Issue
1
fYear
2014
fDate
Feb. 2014
Firstpage
235
Lastpage
245
Abstract
This work is directed to analysis and description of the factors which determine the efficiency of inorganic scintillators. The interconnection of different stages of track formation and relaxation is analyzed. The hierarchy of the scales of different processes in scintillators is discussed. The main attention is paid on the evolution of energy and spatial distribution of excitations in the excited region in scintillators. Different types of recombination - geminate and stochastic - and their features are considered, both in cases of low and high concentration of excitations and impurities. The spatial structure of the track after thermalization is discussed, with discriminating high-energy and low-energy part of the track of ionizing particle. Main features of thermalization and formation of thermalization length in different types of crystals with simple and complex structure and with different phonon spectrum are considered. The peculiarities of these processes in binary and complex halides and the estimation of limits of scintillator efficiency in these crystals are reviewed. Possible mechanism based on Auger relaxation of core hole which enhances the yield in CsI is proposed. The estimations of limiting factors for traditional alkali halide crystals and the perspectives of complex halides are discussed.
Keywords
caesium compounds; crystal structure; phonon spectra; solid scintillation detectors; Auger relaxation; CsI; alkali halide crystals; complex halides; core hole; crystal structure; inorganic scintillators; ionizing particle; multiscale approach; phonon spectrum; recombination-geminate; recombination-stochastic; scintillation characteristics; scintillator efficiency; thermalization length; Crystals; Estimation; Excitons; Phonons; Scattering; Spontaneous emission; Electron-phonon interaction; excitation relaxation; inorganic scintillators; recombination; scintillation mechanism; thermalization length;
fLanguage
English
Journal_Title
Nuclear Science, IEEE Transactions on
Publisher
ieee
ISSN
0018-9499
Type
jour
DOI
10.1109/TNS.2013.2282117
Filename
6651748
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