• DocumentCode
    746760
  • Title

    Ytterbium laser with reduced thermal loading

  • Author

    Bowman, Steven R. ; O´Connor, Shawn P. ; Biswal, Subrat

  • Author_Institution
    Photonics Technol. Branch, U.S. Naval Res. Lab., Washington, DC, USA
  • Volume
    41
  • Issue
    12
  • fYear
    2005
  • Firstpage
    1510
  • Lastpage
    1517
  • Abstract
    We report a novel design for a high-power ytterbium disk laser. This laser utilizes radial diode pumping of a back surface cooled active-mirror geometry. Wing absorption of the pump light at 0.99 μm allows efficient laser operation at 1.05 μm with a low quantum defect. Laser performance and thermal loading were characterized for a wide range of conditions. Optimized operation of the laser yielded 490 W in a quasi-continuous-wave mode. Electrical efficiency of the laser was found to be 9.4%, while heating of the laser disk was only 3.2% of the absorbed optical power. Fluorescence re-absorption is identified as the principal heat generation mechanism in this laser. A simplified extension to the conventional rate model is proposed for lasing in radiation-trapped systems. This model allows power flow calculations in a radiation-trapped laser system using a single parameter determined from fluorescence decay waveforms. The revised model agrees with heat load measurements.
  • Keywords
    fluorescence; laser cavity resonators; laser mirrors; laser modes; optical pumping; solid lasers; thermo-optical effects; ytterbium; 0.99 mum; 1.05 mum; 490 W; Yb; absorbed optical power; active-mirror geometry; back surface cooled geometry; conventional rate model; disk laser; electrical efficiency; fluorescence decay waveforms; fluorescence reabsorption; heat load measurements; high-power laser; laser disk heating; laser performance; power flow calculations; principal heat generation mechanism; quantum defect; quasicontinuous-wave mode; radial diode pumping; radiation-trapped systems; reduced thermal loading; thermal loading; wing absorption; ytterbium laser; Diodes; Fluorescence; Laser excitation; Laser modes; Optical design; Power lasers; Power system modeling; Pump lasers; Thermal loading; Ytterbium; Laser thermal factors; solid lasers; ytterbium;
  • fLanguage
    English
  • Journal_Title
    Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9197
  • Type

    jour

  • DOI
    10.1109/JQE.2005.858796
  • Filename
    1546275