Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/100644
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Title: Single channel 50 Gbit/s transmission over 40 km SSMF without optical amplification and in-line dispersion compensation using a single-end PD-based PDM-SSB-DMT system
Authors: Zhou, X 
Huo, J 
Zhong, K 
Khan, FN 
Gui, T 
Zhang, H
Tu, J 
Yuan, J 
Long, K 
Yu, C
Lau, APT 
Lu, C 
Issue Date: Oct-2017
Source: IEEE photonics journal, Oct. 2017, v. 9, no. 5, 7906911
Abstract: We experimentally demonstrate a single-end photodetector (PD) based polarization-division-multiplexing (PDM) system, in which the single-sideband orthogonal frequency-division multiplexing (SSB-OFDM) and discrete multitone (DMT) signals are modulated on two orthogonal polarizations respectively. Based on the frequency interleave design for dual-polarization, the spectral efficiency and chromatic dispersion tolerance can be optimized. We derive the theoretical model for the PDM-SSB-DMT system and detail the digital signal processing for demultiplexing at the receiver. We also successfully transmit a 50 Gb/s PDM-SSB-DMT signal with 14 GHz bandwidth over 40 km of uncompensated and unamplified standard single mode fiber (SSMF) with only 1.1 dB power penalty for a bit error rate of 3.8 × 10-3 relative to back-to-back transmissions.
Keywords: Direct-detection
Discrete multi-tone
Polarization-multiplexing
Single-sideband
Publisher: Institute of Electrical and Electronics Engineers
Journal: IEEE photonics journal 
EISSN: 1943-0655
DOI: 10.1109/JPHOT.2017.2749501
Rights: © 2017 IEEE
IEEE Photonics Journal is open access. Articles accepted before 12 June 2019 were published under a CC BY 3.0 or the IEEE Open Access Publishing Agreement license.
The following publication X. Zhou et al., "Single Channel 50 Gbit/s Transmission Over 40 km SSMF Without Optical Amplification and In-Line Dispersion Compensation Using a Single-End PD-Based PDM-SSB-DMT System," in IEEE Photonics Journal, vol. 9, no. 5, pp. 1-11, Oct. 2017, Art no. 7906911 is available at https://doi.org/10.1109/JPHOT.2017.2749501.
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