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Crystal growth and scintillation properties of new ytterbium-activated scintillators Cs4CaI6:Yb and Cs4SrI6:Yb.

Authors :
Rutstrom, Daniel
Stand, Luis
Dryzhakov, Bogdan
Koschan, Merry
Melcher, Charles L.
Zhuravleva, Mariya
Source :
Optical Materials. Dec2020, Vol. 110, pN.PAG-N.PAG. 1p.
Publication Year :
2020

Abstract

Yb2+ was investigated as a potential alternative activator for Cs 4 SrI 6 and Cs 4 CaI 6 scintillators for the first time, as opposed to the previously studied Eu2+ activator. Single crystals with nominal Yb2+ concentrations of 0.5 mol%, 1 mol%, and 3 mol% were grown in Ø7 mm ampoules using the vertical Bridgman method. Luminescence and scintillation properties were evaluated as a function of Yb2+ concentration and host compound. The 5 d → 4 f electronic transition of Yb2+ was observed for both the Sr- and Ca-containing compositions. X-ray induced radioluminescence emission was centered between 449 nm and 463 nm depending on Yb2+ concentration and host compound. Both the spin-allowed and spin-forbidden transitions were observed in photoluminescence emission spectra and were centered at 446 nm and 476 nm, respectively, for both compounds. The best scintillation performance was achieved with Cs 4 CaI 6 :Yb 1 mol%, which had a 3.5% energy resolution at 662 keV and 43,000 ph/MeV light yield. To our knowledge this is the best energy resolution ever reported for a Yb2+-doped scintillator. Additional Cs 4 CaI 6 :Yb 1% crystals were grown in Ø12 mm ampoules to investigate the size dependence of scintillation properties, as well as crystal homogeneity. • Single crystals of Cs4CaI6:Yb and Cs4SrI6:Yb were grown using the vertical Bridgman technique. • Cs4CaI6:Yb 1% has an energy resolution of 3.5% at 662 keV and light yield of 43,000 ph/MeV. • Emission from the Yb2+ spin-allowed and spin-forbidden transitions are both observed in photoluminescence spectra.. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09253467
Volume :
110
Database :
Academic Search Index
Journal :
Optical Materials
Publication Type :
Academic Journal
Accession number :
147483387
Full Text :
https://doi.org/10.1016/j.optmat.2020.110536