• DocumentCode
    22098
  • Title

    Optimum Linewidth of Spectrum-Sliced Incoherent Light Source Using a Gain-Saturated Semiconductor Optical Amplifier

  • Author

    Qikai Hu ; Changyuan Yu ; Pooi-Yuen Kam ; Hoon Kim

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Nat. Univ. of Singapore, Singapore, Singapore
  • Volume
    33
  • Issue
    17
  • fYear
    2015
  • fDate
    Sept.1, 1 2015
  • Firstpage
    3744
  • Lastpage
    3750
  • Abstract
    We investigate the optimum linewidth of the spect rum-sliced incoherent light (SSIL) source using a gain-saturated semiconductor optical amplifier (SOA) for the maximum capacity and longest transmission distance. For this purpose, we carry out experimental and simulation studies on the transmission performance of a 10-Gb/s on-off keying signal generated by using the SSIL source over a wide range of the SSIL linewidth. We find out that there are two windows of the linewidth for the highspeed operation of the SSIL source: ultra-narrow (i.e., linewidth ≪ receiver bandwidth) and very wide (i.e., linewidth ≫ receiver bandwidth). However, when the linewidth of the SSIL source is very wide, the 10-Gb/s signal generated by using this SSIL suffers severely from fiber chromatic dispersion and optical filtering. The simulation results are confirmed by experimental data measured by using an ultranarrow fiber Fabry-Perot filter (bandwidth = 700 MHz) and a bandwidth-tunable optical filter (bandwidth = 20 ~ 53 GHz). Thus, we can conclude that the optimum linewidth of SSIL for capacity and transmission distance is ultranarrow. We also present a couple of drawbacks of the ultranarrow SSIL source, compared to the conventional wide-linewidth SSIL one, such as a large spectrum-slicing loss, a large SOA input power required for the suppression of excess intensity noise inherent in the incoherent light source, and the susceptibility to in-band crosstalk.
  • Keywords
    optical fibre communication; optical fibre dispersion; optical fibre filters; optical fibre testing; optical noise; optical receivers; optical saturation; optical windows; passive optical networks; semiconductor optical amplifiers; spectral line breadth; wavelength division multiplexing; SSIL linewidth windows; bandwidth 700 MHz; bandwidth-tunable optical filter; fiber chromatic dispersion; gain-saturated semiconductor optical amplifier; in-band crosstalk; intensity noise suppression; on-off keying signal generation; optical filtering; optical transmission performance; receiver bandwidth; ultranarrow fiber Fabry-Perot filter; ultranarrow spectrum-sliced incoherent light source; Bandwidth; Bit error rate; High-speed optical techniques; Optical filters; Passive optical networks; Semiconductor optical amplifiers; Wavelength division multiplexing; Incoherent light; passive optical networks; semiconductor optical amplifier (SOA); spectrum slicing; wavelength division multiplexing (WDM);
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2015.2459724
  • Filename
    7164249