• DocumentCode
    737987
  • Title

    Comprehensive Theoretical and Experimental Study of Short- and Long-Term Stability in a Passively Mode-Locked Solitonic Fiber Laser

  • Author

    Brotons-Gisbert, M. ; Villanueva, G.E. ; Abreu-Afonso, J. ; Serafino, G. ; Bogoni, A. ; Andres, M.V. ; Perez-Millan, P.

  • Author_Institution
    Inst. de Cienc. de los Mater., Univ. de Valencia, Valencia, Spain
  • Volume
    33
  • Issue
    19
  • fYear
    2015
  • Firstpage
    4039
  • Lastpage
    4049
  • Abstract
    We demonstrate the short- and long-term stable operation of an all-polarization-maintained Fabry-Pérot cavity passively mode-locked fiber laser. The laser operates in an all-anomalous-dispersion solitonic regime. Laser stability is studied by a variety of measurements, which confirm the high stability of the laser in the temporal and spectral-both optical and electrical-domains. Pulse durations of 540 fs, period-relative time jitters of ~0.0150/00, and long-term uninterrumped operation with 0.4% variation (standard deviation) in the average output power are obtained. The highly stable operation of the laser oscillator was maintained after amplifying the laser output with a conventional EDFA. Pulse durations of ~244 fs, period-relative time jitters of ~0.0190/00, and an average output power of 20 mW were obtained after amplification, while maintaining the 100-dB signal-to-noise ratio of the laser oscillator measured at 500-Hz offset from the fundamental harmonic frequency. The theoretical validation of our experimental results is based on solutions of the Nonlinear Schrödinger Equation. We demonstrate that wavelength and z -position dependences of the active medium gain must be taken into account for an accurate correspondence with the experimental properties of the laser.
  • Keywords
    Schrodinger equation; erbium; laser cavity resonators; laser mode locking; laser noise; laser stability; optical fibre amplifiers; optical fibre dispersion; optical fibre polarisation; optical solitons; timing jitter; EDFA; active medium gain; all-anomalous-dispersion solitonic regime; all-polarization-maintained Fabry-Perot cavity passively mode-locked fiber laser; electrical domains; frequency 500 Hz; fundamental harmonic frequency; laser oscillator; laser output amplification; laser stability; long-term stability; long-term uninterrumped operation; nonlinear Schrodinger equation; optical domains; output power; passively mode-locked solitonic fiber laser; period-relative time jitters; power 20 mW; pulse durations; short-term stability; signal-to-noise ratio; standard deviation; time 540 fs; z-position dependence; Cavity resonators; Laser mode locking; Laser stability; Measurement by laser beam; Optical pulses; Optical resonators; Optical solitons; Erbium lasers; Fiber lasers; erbium lasers; fiber lasers; laser stabilization; mode-locked lasers; ultrafast lasers;
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2015.2455153
  • Filename
    7154406