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Comb-based WDM transmission at 10 Tbit/s using a DC-driven quantum-dash mode-locked laser diode

  • Pablo Marin-Palomo
  • , Juned N. Kemal
  • , Philipp Trocha
  • , Stefan Wolf
  • , Kamel Merghem
  • , François Lelarge
  • , Abderrahim Ramdane
  • , Wolfgang Freude
  • , Sebastian Randel
  • , Christian Koos
  • Institute of Meteorology and Climate Research
  • Centre de Nanosciences et de Nanotechnologies
  • Almae Technologies
  • Universität Karlsruhe/Forschungszentrum Karlsruhe

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

47 Citations (Scopus)

Résumé

Chip-scale frequency comb generators have the potential to become key building blocks of compact wavelength-division multiplexing (WDM) transceivers in future metropolitan or campus-area networks. Among the various comb generator concepts, quantum-dash (QD) mode-locked laser diodes (MLLD) stand out as a particularly promising option, combining small footprint with simple operation by a DC current and offering flat broadband comb spectra. However, the data transmission performance achieved with QD-MLLD was so far limited by strong phase noise of the individual comb tones, restricting experiments to rather simple modulation formats such as quadrature phase shift keying (QPSK) or requiring hardware-based compensation schemes. Here we demonstrate that these limitations can be overcome by digital symbol-wise blind phase search (BPS) techniques, avoiding any hardware-based phase-noise compensation. We demonstrate 16QAM dual-polarization WDM transmission on 38 channels at an aggregate net data rate of 10.68 Tbit/s over 75 km of standard single-mode fiber. To the best of our knowledge, this corresponds to the highest data rate achieved through a DC-driven chip-scale comb generator without any hardware-based phase-noise reduction schemes.

langue originaleAnglais
Pages (de - à)31110-31129
Nombre de pages20
journalOptics Express
Volume27
Numéro de publication22
Les DOIs
étatPublié - 28 oct. 2019
Modification externeOui

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