• DocumentCode
    1303677
  • Title

    Joint Digital Signal Processing Receivers for Spatial Superchannels

  • Author

    Feuer, Mark D. ; Nelson, Lynn E. ; Zhou, Xiang ; Woodward, Sheryl L. ; Isaac, Rejoy ; Zhu, Benyuan ; Taunay, Thierry F. ; Fishteyn, Michael ; Fini, John Michael ; Yan, Man F.

  • Author_Institution
    AT&T Labs. Res., Middletown, NJ, USA
  • Volume
    24
  • Issue
    21
  • fYear
    2012
  • Firstpage
    1957
  • Lastpage
    1960
  • Abstract
    We discuss the advantages of spatial superchannels for future terabit networks based on space-division multiplexing (SDM), and demonstrate reception of spatial superchannels by a coherent receiver utilizing joint digital signal processing (DSP). In a spatial superchannel, the SDM modes at a given wavelength are routed together, allowing a simplified design of both transponders and optical routing equipment. For example, common-mode impairments can be exploited to streamline the receiver´s DSP. Our laboratory measurements reveal that the phase fluctuations between the cores of a multicore fiber are strongly correlated, and therefore constitute such a common-mode impairment. We implement master-slave phase recovery of two simultaneous 112-Gbps subchannels in a seven-core fiber, demonstrating reduced processing complexity with no increase in the bit-error ratio. Furthermore, we investigate the feasibility of applying this technique to subchannels carried on separate single-mode fibers, a potential transition strategy to evolve today´s fiber networks toward future networks using multicore fibers.
  • Keywords
    optical fibre networks; optical receivers; signal processing; space division multiplexing; transponders; bit rate 112 Gbit/s; coherent receiver; common mode impairment; joint digital signal processing receiver; master-slave phase recovery; multicore fiber; optical fiber network; optical routing equipment; seven core fiber; space division multiplexing; spatial superchannels; terabit networks; transponder design; Digital signal processing; Joints; Optical fiber networks; Optical fiber polarization; Wavelength division multiplexing; Coherent communications; optical transmission; space-division multiplexing (SDM);
  • fLanguage
    English
  • Journal_Title
    Photonics Technology Letters, IEEE
  • Publisher
    ieee
  • ISSN
    1041-1135
  • Type

    jour

  • DOI
    10.1109/LPT.2012.2220672
  • Filename
    6317137