• Photonics Research
  • Vol. 2, Issue 4, B5 (2014)
Fangzheng Zhang, Xiaozhong Ge, and and Shilong Pan*
Author Affiliations
  • Key Laboratory of Radar Imaging and Microwave Photonics, Ministry of Education, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China
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    DOI: 10.1364/PRJ.2.0000B5 Cite this Article Set citation alerts
    Fangzheng Zhang, Xiaozhong Ge, and Shilong Pan. Background-free pulsed microwave signal generation based on spectral shaping and frequency-to-time mapping[J]. Photonics Research, 2014, 2(4): B5 Copy Citation Text show less
    Schematic diagram for pulsed microwave waveform generation based on spectral shaping and FTTM.
    Fig. 1. Schematic diagram for pulsed microwave waveform generation based on spectral shaping and FTTM.
    Proposed scheme for background-free pulsed microwave signal generation. MLL, mode-locked laser; PC, polarization controller; DGDE, differential group delay element; DE, dispersive element; PBS, polarization beam splitter; BPD, balanced photodetector; OSC, oscilloscope; ESA, electrical spectral analyzer.
    Fig. 2. Proposed scheme for background-free pulsed microwave signal generation. MLL, mode-locked laser; PC, polarization controller; DGDE, differential group delay element; DE, dispersive element; PBS, polarization beam splitter; BPD, balanced photodetector; OSC, oscilloscope; ESA, electrical spectral analyzer.
    Simulation results for the generation of a Gaussian-shaped microwave pulse. Waveforms generated by (a) single-end detection and (b) balanced detection; (c) shows the corresponding electrical power spectra.
    Fig. 3. Simulation results for the generation of a Gaussian-shaped microwave pulse. Waveforms generated by (a) single-end detection and (b) balanced detection; (c) shows the corresponding electrical power spectra.
    Optical spectra (a) before the PBS and (b) at the two outputs of the PBS.
    Fig. 4. Optical spectra (a) before the PBS and (b) at the two outputs of the PBS.
    Measured waveforms of the generated microwave pulses obtained by (a) single-end detection using the BPD and (b) balanced photodetection.
    Fig. 5. Measured waveforms of the generated microwave pulses obtained by (a) single-end detection using the BPD and (b) balanced photodetection.
    Electrical power spectra of the pulsed microwave signals obtained by (a) single-end and (b) balanced detection.
    Fig. 6. Electrical power spectra of the pulsed microwave signals obtained by (a) single-end and (b) balanced detection.
    Waveforms and electrical spectra of the pulsed microwave signals at (a) and (b) PMF=6.5 m, SMF=5.88 km and (c) and (d) PMF=12.4 m, SMF=7.8 km.
    Fig. 7. Waveforms and electrical spectra of the pulsed microwave signals at (a) and (b) PMF=6.5m, SMF=5.88km and (c) and (d) PMF=12.4m, SMF=7.8km.
    Fangzheng Zhang, Xiaozhong Ge, and Shilong Pan. Background-free pulsed microwave signal generation based on spectral shaping and frequency-to-time mapping[J]. Photonics Research, 2014, 2(4): B5
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