• Photonics Research
  • Vol. 7, Issue 11, 1363 (2019)
Yetian Huang1、2, Haoshuo Chen2、*, Hanzi Huang1、2, Zhengxuan Li1, Nicolas K. Fontaine2, Roland Ryf2, Juan Carlos Alvarado3, Rodrigo Amezcua-Correa3, John van Weerdenburg4, Chigo Okonkwo4, A. M. J. Koonen4, Yingxiong Song1, and Min Wang1
Author Affiliations
  • 1Key Laboratory of Specialty Fiber Optics and Optical Access Networks, Joint International Research Laboratory of Specialty Fiber Optics and Advanced Communication, Shanghai Institute for Advanced Communication and Data Science, Shanghai University, Shanghai 200444, China
  • 2Nokia Bell Labs, Holmdel, New Jersey 07733, USA
  • 3CREOL, University of Central Florida, Orlando, Florida 32816, USA
  • 4Institute for Photonic Integration, Eindhoven University of Technology, 5600 MB, Eindhoven, The Netherlands
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    DOI: 10.1364/PRJ.7.001363 Cite this Article Set citation alerts
    Yetian Huang, Haoshuo Chen, Hanzi Huang, Zhengxuan Li, Nicolas K. Fontaine, Roland Ryf, Juan Carlos Alvarado, Rodrigo Amezcua-Correa, John van Weerdenburg, Chigo Okonkwo, A. M. J. Koonen, Yingxiong Song, Min Wang. Mode- and wavelength-multiplexed transmission with crosstalk mitigation using a single amplified spontaneous emission source[J]. Photonics Research, 2019, 7(11): 1363 Copy Citation Text show less
    Illustration of optical crosstalk from space-division multiplexing (SDM) and photonic integration.
    Fig. 1. Illustration of optical crosstalk from space-division multiplexing (SDM) and photonic integration.
    Schematic of (a) crosstalk induced by coherent detection and (b) crosstalk mitigation using low-coherence matched detection. (Base, modulated ASE bandwidth; Bs, signal bandwidth; Δt, temporal path length difference between the signal and LO.)
    Fig. 2. Schematic of (a) crosstalk induced by coherent detection and (b) crosstalk mitigation using low-coherence matched detection. (Base, modulated ASE bandwidth; Bs, signal bandwidth; Δt, temporal path length difference between the signal and LO.)
    (a) Measured optical spectra of an ASE-based low-coherence source (LCS) with different Base. (b) Setup for measuring inteferogram of a low-coherence source and (c) interferogram for an LCS with Base of 0.5 nm, 1 nm, and 2 nm.
    Fig. 3. (a) Measured optical spectra of an ASE-based low-coherence source (LCS) with different Base. (b) Setup for measuring inteferogram of a low-coherence source and (c) interferogram for an LCS with Base of 0.5 nm, 1 nm, and 2 nm.
    (a) Setup of ASE-based low-coherence matched detection and (b) achieved BER for ASE with different Base as a function of Δt.
    Fig. 4. (a) Setup of ASE-based low-coherence matched detection and (b) achieved BER for ASE with different Base as a function of Δt.
    (a) Setup for characterizing system performance with various crosstalk levels using low-coherence matched detection and (b) measured BER versus crosstalk for various Base.
    Fig. 5. (a) Setup for characterizing system performance with various crosstalk levels using low-coherence matched detection and (b) measured BER versus crosstalk for various Base.
    (a) Setup for mitigating the polarization crosstalk after SMF transmission with different transmission distances; (b) schematic of the integrated DP-IQ MZM with 2-ps temporal delay between two polarization states; BER using MIMO-less DSP versus the time delay through tuning the delay line for (c) 10-m and (e) 5-km transmission; recovered QPSK constellations of the y-pol from both receivers at time around 4 ps for (d) 10-m and (f) 5-km transmission, including the results using maximum ratio combining (MRC).
    Fig. 6. (a) Setup for mitigating the polarization crosstalk after SMF transmission with different transmission distances; (b) schematic of the integrated DP-IQ MZM with 2-ps temporal delay between two polarization states; BER using MIMO-less DSP versus the time delay through tuning the delay line for (c) 10-m and (e) 5-km transmission; recovered QPSK constellations of the y-pol from both receivers at time around 4 ps for (d) 10-m and (f) 5-km transmission, including the results using maximum ratio combining (MRC).
    (a) Setup for individual spatial and polarization mode detection by mitigating the modal crosstalk, (b) BER for the spatial mode: LP11b mode using only 2×2 MIMO DSP, and (c) BER for the spatial and polarization mode: LP11bx mode using MIMO-less DSP versus the time difference Δt between the signal and matched LO.
    Fig. 7. (a) Setup for individual spatial and polarization mode detection by mitigating the modal crosstalk, (b) BER for the spatial mode: LP11b mode using only 2×2 MIMO DSP, and (c) BER for the spatial and polarization mode: LP11bx mode using MIMO-less DSP versus the time difference Δt between the signal and matched LO.
    Measured BER with spatial mode crosstalk mitigation as a function of Base while transmitting both LP11a and LP11b modes over (a) 10-m, (b) 0.5-km, (c) 1-km, and (d) 1.5-km three-mode MMF.
    Fig. 8. Measured BER with spatial mode crosstalk mitigation as a function of Base while transmitting both LP11a and LP11b modes over (a) 10-m, (b) 0.5-km, (c) 1-km, and (d) 1.5-km three-mode MMF.
    (a) Setup for wavelength- and mode-multiplexed transmission over 1.5-km MMF with modal crosstalk mitigation using ASE-based matched detection; optical spectra of the wavelength-multiplexed signal after (b) 10-m and (c) 1.5-km 3-mode MMF transmission; recovered QPSK constellations and measured BER for (d) the LP11a mode using a CW laser with a 100-kHz linewidth, and (e) both LP11a and LP11b modes with Base=2 nm at four wavelengths.
    Fig. 9. (a) Setup for wavelength- and mode-multiplexed transmission over 1.5-km MMF with modal crosstalk mitigation using ASE-based matched detection; optical spectra of the wavelength-multiplexed signal after (b) 10-m and (c) 1.5-km 3-mode MMF transmission; recovered QPSK constellations and measured BER for (d) the LP11a mode using a CW laser with a 100-kHz linewidth, and (e) both LP11a and LP11b modes with Base=2  nm at four wavelengths.
    Yetian Huang, Haoshuo Chen, Hanzi Huang, Zhengxuan Li, Nicolas K. Fontaine, Roland Ryf, Juan Carlos Alvarado, Rodrigo Amezcua-Correa, John van Weerdenburg, Chigo Okonkwo, A. M. J. Koonen, Yingxiong Song, Min Wang. Mode- and wavelength-multiplexed transmission with crosstalk mitigation using a single amplified spontaneous emission source[J]. Photonics Research, 2019, 7(11): 1363
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