• Acta Optica Sinica
  • Vol. 40, Issue 18, 1806006 (2020)
Dongfei Wang, Xianfeng Tang, Lixia Xi*, and Xiaoguang Zhang
Author Affiliations
  • State Key Laboratory of Information Photonics and Optical Communications, Beijing University of Posts and Telecommunications, Beijing 100876, China
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    DOI: 10.3788/AOS202040.1806006 Cite this Article Set citation alerts
    Dongfei Wang, Xianfeng Tang, Lixia Xi, Xiaoguang Zhang. Orthogonal Frequency Division Multiplexing Vector Millimeter-Wave Generation Based on Two Parallel Phase Modulators[J]. Acta Optica Sinica, 2020, 40(18): 1806006 Copy Citation Text show less
    Schematic diagrams of generating single sideband signal by Hilbert transform. (a) USB; (b) LSB
    Fig. 1. Schematic diagrams of generating single sideband signal by Hilbert transform. (a) USB; (b) LSB
    Schematic diagram of OFDM vector mm-wave generation based on two-phase modulator
    Fig. 2. Schematic diagram of OFDM vector mm-wave generation based on two-phase modulator
    Spectra at various locations in process of generating vector millimeter waves. (a) Electrical spectrum of RF OFDM vector signal after up conversion; (b) electrical spectrum after superposition of two RF signals; (c) optical spectrum of output signal of laser; (d) optical spectrum of output signal of phase modulator PM-a; (e) optical spectrum of output signal of phase modulator PM-b; (f) optical spectrum after coherent superposition of output signals from two phase modulators; (g) selected ±1st o
    Fig. 3. Spectra at various locations in process of generating vector millimeter waves. (a) Electrical spectrum of RF OFDM vector signal after up conversion; (b) electrical spectrum after superposition of two RF signals; (c) optical spectrum of output signal of laser; (d) optical spectrum of output signal of phase modulator PM-a; (e) optical spectrum of output signal of phase modulator PM-b; (f) optical spectrum after coherent superposition of output signals from two phase modulators; (g) selected ±1st o
    Measured BER versus received optical power for 2.5/5-Gbaud/s QPSK modulated OFDM vector mm-wave signals in BTB and after 10-km SMF transmission. Inserts Ⅰ and Ⅱ are received QPSK constellations when received optical powers are -21.5 dBm and -19.6 dBm, respectively
    Fig. 4. Measured BER versus received optical power for 2.5/5-Gbaud/s QPSK modulated OFDM vector mm-wave signals in BTB and after 10-km SMF transmission. Inserts Ⅰ and Ⅱ are received QPSK constellations when received optical powers are -21.5 dBm and -19.6 dBm, respectively
    Measured BER results versus phase deviation drift for 5-GBaud/s QPSK modulated OFDM vector mm-wave signals in BTB transmission case. Inserts Ⅰ and Ⅱ are output optical spectra after dual-parallel phase modulator when phase deviation drifts are 0° and 30°, respectively
    Fig. 5. Measured BER results versus phase deviation drift for 5-GBaud/s QPSK modulated OFDM vector mm-wave signals in BTB transmission case. Inserts Ⅰ and Ⅱ are output optical spectra after dual-parallel phase modulator when phase deviation drifts are 0° and 30°, respectively
    Dongfei Wang, Xianfeng Tang, Lixia Xi, Xiaoguang Zhang. Orthogonal Frequency Division Multiplexing Vector Millimeter-Wave Generation Based on Two Parallel Phase Modulators[J]. Acta Optica Sinica, 2020, 40(18): 1806006
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