• DocumentCode
    931419
  • Title

    Quantum electronic properties of the Na/sub 3/Ga/sub 2/Li/sub 3/F/sub 12/:Cr/sup 3+/ laser

  • Author

    Caird, John A. ; Payne, Stephen A. ; Staber, P.R. ; Ramponi, A.J. ; Chase, L.L. ; Krupke, William F.

  • Author_Institution
    Lawrence Livermore Nat. Lab., California Univ., Livermore, CA, USA
  • Volume
    24
  • Issue
    6
  • fYear
    1988
  • fDate
    6/1/1988 12:00:00 AM
  • Firstpage
    1077
  • Lastpage
    1099
  • Abstract
    Few of the existing Cr/sup 3+/ vibronic lasers have achieved the slope efficiency and tuning range expected based on their known spectroscopic properties. To discover the cause of this behavior, the performance of chromium-doped gallium fluoride garnet, Na/sub 3/Ga/sub 2/Li/sub 3/F/sub 12/:Cr/sup 3+/, as a laser material has been investigated experimentally. The data reported include absorption and emission spectra, emission rates, quantum efficiency, laser wavelength tuning range, laser output slope efficiencies, and excited-state absorption spectra. Similar properties of the alexandrite laser material were studied for comparison. The results indicate that the performance of the gallium fluoride garnet laser is severely limited by Cr/sup 3+/ excited-state absorption (ESA). A model is presented to account for the unexpected nature of the ESA, which appears to be a common problem for all Cr/sup 3+/ vibronic lasers. Criteria are suggested for choosing Cr/sup 3+/ hosts for which the effects of ESA will be minimized.<>
  • Keywords
    chromium; garnets; laser tuning; sodium compounds; solid lasers; Cr/sup 3+/:Na/sub 3/Ga/sub 2/Li/sub 3/F/sub 12/; ESA; Na/sub 3/Ga/sub 2/Li/sub 3/F/sub 12/:Cr/sup 3+/ laser; absorption spectra; alexandrite laser material; emission rates; emission spectra; excited-state absorption spectra; laser wavelength; quantum efficiency; quantum electronic properties; slope efficiency; tuning range; vibronic lasers; Absorption; Chromium; Crystalline materials; Gallium compounds; Garnets; Laser excitation; Laser modes; Laser transitions; Laser tuning; Optical materials;
  • fLanguage
    English
  • Journal_Title
    Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9197
  • Type

    jour

  • DOI
    10.1109/3.231
  • Filename
    231