Energy Transfer Processes in (Lu,Gd)AlO3:Ce

Abstract

In this paper we present initial results of studies on energy transfer processes in Ce-activated Lu, Y and Gd aluminum perovskite crystals that contribute to production of scintillation light in these new scintillator materials. In particular we report and analyze emission spectra, excitation spectra, and emission time profiles under pulsed synchrotron excitation in the wavelength range of 50-300 nm. The emission spectra of Lu(0.65)Gd(0.35)AlO3:Ce and Lu(0.2)Y(0.8)AlO3:Ce display a characteristic double band that is due to the spin-orbit split d-f transition of Ce(3+) with no indication of Gd(3+) f-f emissions in the Gd-containing crystal. Nevertheless the 'time-gated' and 'integrated' excitation spectra of Ce-emission of this crystal in addition to the f-d Ce(3+) bands reveal some additional fine features, absent in the Y-containing crystal, that are evidently related to the f-f transitions at Gd(3+) ions. We also observe that the Ce-emission time profile measured under direct Ce-excitation displays fast decaying component while the Gd-tuned excitation produces slow profiles that resemble those observed under gamma or X-ray excitation. These results directly prove that slow scintillation components characteristic of the Lu(x)Gd(1-x)AlO3:Ce scintillator are due to transfer of energy that was originally deposited by the ionizing radiation in the Gd-sublattice of the crystal.

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Document Details

Document Type
Technical Report
Publication Date
Jan 01, 2001
Accession Number
ADP011901

Entities

People

  • Andrzej J. Wojtowicz
  • Jiri A. Mares

Tags

Communities of Interest

  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Aluminum
  • Charge Carriers
  • Crystals
  • Czech Republic
  • Emission Spectra
  • Energy
  • Energy Transfer
  • Europe
  • Ionizing Radiation
  • Materials
  • Radiation
  • Republic
  • Single Crystals
  • Spectra
  • Spectroscopy
  • Synchrotron Radiation
  • Synchrotrons

Fields of Study

  • Physics

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