• DocumentCode
    59053
  • Title

    Direct Selection and Amplification of Individual Narrowly Spaced Optical Comb Modes Via Injection Locking: Design and Characterization

  • Author

    Wu, David S. ; Slavik, R. ; Marra, Giuseppe ; Richardson, D.J.

  • Author_Institution
    Optoelectron. Res. Centre, Univ. of Southampton, Southampton, UK
  • Volume
    31
  • Issue
    14
  • fYear
    2013
  • fDate
    15-Jul-13
  • Firstpage
    2287
  • Lastpage
    2295
  • Abstract
    Many applications of optical frequency combs (OFCs) require manipulation and amplification of individual comb modes, e.g., arbitrary waveform generation, terahertz generation and telecommunications. Extracting individual comb modes can be a challenging task for OFCs with narrow comb mode spacings (100 MHz to 10 GHz) due to the limitations of conventional optical filters. Optical injection locking can address this problem, but-due to the relatively large bandwidth (1 to 10 GHz) required for simple (i.e., without the need for additional feedback loops) and stable locking-can struggle when processing OFCs with sub-GHz comb mode spacings. Here, we present an approach to optical injection locking which incorporates a dither-free phase locked loop that allowed for long-term locking to OFCs with comb spacings below the high power injection locking bandwidth. As a result, we achieved robust injection locking directly to a sub-GHz OFC (250 MHz in our experiments). Optimization of the optical injection power is carried out using detailed phase noise characterization. We achieved an Allan deviation for the frequency variation of the slave laser with respect to the injected comb mode (1 s gate time) down to 9.7 × 10-17 and 4.4 × 10-19 at 1 s and 1000 s averaging times respectively, and a phase error variance of 0.02 rad2 (integration bandwidth of 100 Hz to 500 MHz).
  • Keywords
    amplification; laser frequency stability; laser mode locking; laser noise; microwave photonics; optical phase locked loops; phase noise; Allan deviation; OFC; amplification; averaging times; dither-free phase locked loop; frequency 1 GHz to 10 GHz; frequency 100 MHz to 10 GHz; frequency variation; gate time; high power injection locking bandwidth; injected comb mode; integration bandwidth; long-term locking; narrowly spaced optical frequency comb modes; optical injection locking; optical injection power; optimization; phase error variance; phase noise characterization; slave laser; stable locking; subGHz comb mode spacings; time 1 s; Adaptive optics; Injection-locked oscillators; Laser mode locking; Laser noise; Optical feedback; Optical noise; Semiconductor lasers; Optical frequency combs; optical injection locking; phase noise;
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2013.2262921
  • Filename
    6515623