• DocumentCode
    45719
  • Title

    Spectrally-Efficient 400-Gb/s Single Carrier Transport Over 7 200 km

  • Author

    Rios-Muller, Rafael ; Renaudier, Jeremie ; Brindel, Patrick ; Ghazisaeidi, Amirhossein ; Fernandez, Ivan ; Tran, Patrice ; Simonneau, Christian ; Schmalen, Laurent ; Charlet, Gabriel

  • Author_Institution
    Bell Labs. Alcatel-Lucent, Nozay, France
  • Volume
    33
  • Issue
    7
  • fYear
    2015
  • fDate
    April1, 1 2015
  • Firstpage
    1402
  • Lastpage
    1407
  • Abstract
    Since the advent of wavelength division multiplexed optical systems, increasing the bit rate per optical carrier has proved to be the most effective method to drive the overall cost of optical systems down. However, multicarrier approaches have gained momentum for 400-Gb/s transport to cope with bandwidth limitations of optoelectronic components. In this paper, single carrier modulated 400-Gb/s transport over transatlantic distances is demonstrated for the first time. Using high-speed digital-to-analog converters, we successfully generated a 64 GBaud dual-polarization signal modulated using 16-ary quadrature amplitude modulation. Thanks to Nyquist pulse shaping, our channels are closely packed with 66.7 and 75 GHz channel spacing, resulting on 6 and 5.33-bit/s/Hz of spectral efficiencies, respectively. Transceiver design is based on an optimization procedure of inter-symbol interference mitigation and forward error correction overhead. A spatially-coupled low density parity check code with decoder-aware degree optimization is used to reduce the gap to capacity. We validated our transceiver design by transporting five channels over 6600 and 7200-km with 6 and 5.33-bit/s/Hz of spectral efficiency, respectively. We analyze as well the performance gain provided by non-linear mitigation using filtered digital back-propagation algorithm.
  • Keywords
    channel spacing; decoding; digital-analogue conversion; forward error correction; interference suppression; intersymbol interference; light interference; optical modulation; optical pulse shaping; optical transceivers; parity check codes; wavelength division multiplexing; 16-ary quadrature amplitude modulation; Nyquist pulse shaping; bit rate 400 Gbit/s; bit rate per optical carrier; decoder-aware degree optimization; dual-polarization signal; filtered digital back-propagation algorithm; forward error correction overhead; frequency 66.7 GHz; frequency 75 GHz; high-speed digital-to-analog converters; inter-symbol interference mitigation; multicarrier approaches; nonlinear mitigation; optoelectronic components; spatially-coupled low density parity check code; spectrally-efficient single carrier transport; transatlantic distances; transceiver design; wavelength division multiplexed optical systems; Adaptive optics; Forward error correction; Optical filters; Optical noise; Optical signal processing; Optical transmitters; Signal to noise ratio; Channel coding; Digital signal processing; Digital-analog conversion; Optical fiber communication; Quadrature amplitude modulation; Wavelength division multiplexing; digital signal processing; digital???analog conversion; optical fiber communication; optical filters; quadrature amplitude modulation; wavelength division multiplexing;
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2015.2399104
  • Filename
    7029062