• DocumentCode
    1554675
  • Title

    Field Transmission of 100 G and Beyond: Multiple Baud Rates and Mixed Line Rates Using Nyquist-WDM Technology

  • Author

    Jia, Zhensheng ; Yu, Jianjun ; Chien, Hung-Chang ; Dong, Ze ; Huo, David Di

  • Author_Institution
    ZTE USA Inc., Morristown, NJ, USA
  • Volume
    30
  • Issue
    24
  • fYear
    2012
  • Firstpage
    3793
  • Lastpage
    3804
  • Abstract
    Successful joint experiments with Deutsche Telecom (DT) on long-haul transmission of 100 G and beyond are demonstrated over standard single-mode fiber (SSMF) and inline erbium-doped fiber amplifier-only amplification. The transmission link consists of eight nodes and 950-km installed SSMF in DT´s optical infrastructure with the addition of lab SSMF for extended optical reach. The first field transmission of 8 × 216.8-Gb/s Nyquist-WDM signals is reported over 1750-km distance with 21.6-dB average loss per span. Each channel modulated by a 54.2-Gbaud PDM-CSRZ-QPSK signal is on 50-GHz grid, achieving a net spectral efficiency (SE) of 4 bit/s/Hz. We also demonstrate mixed data-rate transmission coexisting with 1 T, 400 G, and 100 G channels. The 400 G uses four independent subcarriers modulated by 28-Gbaud PDM-QPSK signals, yielding the net SE of 4 bit/s/Hz while 13 optically generated subcarriers from single optical source are employed in 1 T channel with 25-Gbaud PDM-QPSK modulation. The 100 G signal uses real-time coherent PDM-QPSK transponder with 15% overhead of soft-decision forward-error correction. The digital postfilter and 1-bit maximum likelihood sequence estimation are introduced at the receiver DSP to suppress noise, linear crosstalk, and filtering effects. Our results show the future 400 G and 1 T channels utilizing the Nyquist wavelength division multiplexing technique can transmit long-haul distance with higher SE using the same QPSK format.
  • Keywords
    erbium; forward error correction; light transmission; maximum likelihood sequence estimation; optical fibre amplifiers; optical receivers; quadrature phase shift keying; transponders; wavelength division multiplexing; 25-Gbaud PDM-QPSK modulation; 28-Gbaud PDM-QPSK signals; 54.2-Gbaud PDM-CSRZ-QPSK signal; Deutsche Telecom; Nyquist-WDM technology; bit rate 216.8 Gbit/s; digital postfilter; distance 1750 km; distance 950 km; field transmission; frequency 50 GHz; independent subcarriers; inline erbium-doped fiber amplifier; long-haul transmission; maximum likelihood sequence estimation; mixed data-rate transmission; mixed line rates; multiple baud rates; optical infrastructure; optically generated subcarriers; real-time coherent PDM-QPSK transponder; receiver DSP; single optical source; soft-decision forward-error correction; standard single-mode fiber; transmission link; wavelength division multiplexing; Coherence; Digital filters; Digital signal processing; OFDM; Wavelength division multiplexing; Coherent detection; Nyquist wavelength division multiplexing (WDM); coherent optical orthogonal frequency division multiplexing (CO-OFDM); digital filter; digital signal processing (DSP); field trial; maximum likelihood sequence estimation (MLSE);
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2012.2207373
  • Filename
    6235964