• DocumentCode
    9448
  • Title

    Polymer-Based External Cavity Lasers: Tuning Efficiency, Reliability, and Polarization Diversity

  • Author

    de Felipe, David ; Ziyang Zhang ; Brinker, Walter ; Kleinert, Moritz ; Novo, Alejandro Maese ; Zawadzki, Crispin ; Moehrle, Martin ; Keil, Norbert

  • Author_Institution
    Fraunhofer Inst. for Telecommun., Heinrich Hertz Inst., Berlin, Germany
  • Volume
    26
  • Issue
    14
  • fYear
    2014
  • fDate
    15-Jul-14
  • Firstpage
    1391
  • Lastpage
    1394
  • Abstract
    Three aspects of polymer-based external cavity tunable lasers are investigated. First, the tuning efficiency is increased from 0.29 nm/mW to a record 0.52 nm/mW by improving the microheater thermal design. Second, the long-term reliability of such tunable laser modules is investigated through two batches of stress tests at 25 °C and 45 °C, respectively. No degradation effect is observed in terms of output power drop and wavelength drifting after thousands of hours of continuous operation at tuned wavelength of 20 nm. Finally, a novel TM-emitting tunable laser is demonstrated by inserting a half-wave plate into the polymer output waveguide. Index-matching techniques and the intrinsic curved waveguide design guarantee robust single mode operation. The TM laser exhibits excellent side mode suppression ratio (>40 dB), large tuning range (>20 nm), and high output power (>5 mW at 100-mA drive current).
  • Keywords
    laser beams; laser cavity resonators; laser modes; laser tuning; light polarisation; optical polymers; optical retarders; semiconductor lasers; thermo-optical effects; waveguide lasers; TM-emitting tunable laser; continuous operation; current 100 mA; drive current; half-wave plate; index-matching techniques; intrinsic curved waveguide design; long-term reliability; microheater thermal design; output power drop; polarization diversity; polymer output waveguide; polymer-based external cavity tunable lasers; robust single mode operation; side mode suppression ratio; stress tests; temperature 25 degC; temperature 45 degC; tunable laser modules; tuning efficiency; tuning range; wavelength 20 nm; wavelength drifting; Bragg gratings; Laser modes; Laser tuning; Optical waveguides; Polymers; Waveguide lasers; Tunable lasers; optical polymers; thermo-optic effects;
  • fLanguage
    English
  • Journal_Title
    Photonics Technology Letters, IEEE
  • Publisher
    ieee
  • ISSN
    1041-1135
  • Type

    jour

  • DOI
    10.1109/LPT.2014.2324760
  • Filename
    6817539