• Journal of Semiconductors
  • Vol. 40, Issue 5, 052301 (2019)
Ruiyuan Cao, Yu He, Qingming Zhu, Jingchi Li, Shaohua An, Yong Zhang, and Yikai Su
Author Affiliations
  • State Key Laboratory of Advanced Optical Communication Systems and Networks, Department of Electronic Engineering, Shanghai Jiao Tong University, Shanghai 200240, China
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    DOI: 10.1088/1674-4926/40/5/052301 Cite this Article
    Ruiyuan Cao, Yu He, Qingming Zhu, Jingchi Li, Shaohua An, Yong Zhang, Yikai Su. Multi-channel 28-GHz millimeter-wave signal generation on a silicon photonic chip with automated polarization control[J]. Journal of Semiconductors, 2019, 40(5): 052301 Copy Citation Text show less
    (Color online) The proposed multi-channel FWI system architecture based on the silicon photonic MMW generator.
    Fig. 1. (Color online) The proposed multi-channel FWI system architecture based on the silicon photonic MMW generator.
    (Color online) (a) Micrograph of the fabricated chip. (b) Schematic diagrams of the polarization tuning units. (c) Normalized PM(Δϕ1, Δϕ2) with different optical power ratios and initial phase differences between the two inputs of the first MMI. (d) Photograph of the polarization control sub-system. (e) Schematic diagram of the control sub-system.
    Fig. 2. (Color online) (a) Micrograph of the fabricated chip. (b) Schematic diagrams of the polarization tuning units. (c) Normalized PMϕ1, Δϕ2) with different optical power ratios and initial phase differences between the two inputs of the first MMI. (d) Photograph of the polarization control sub-system. (e) Schematic diagram of the control sub-system.
    (Color online) Pseudo-code of the global minimum-power searching algorithm.
    Fig. 3. (Color online) Pseudo-code of the global minimum-power searching algorithm.
    (Color online) Progresses of the proposed algorithm and the algorithm in Ref. [22] when a local minima exists in the normalized PM(Δϕ1, Δϕ2) with a 75% to 25% power ratio and a π/2 phase difference between the two inputs of the first MMI.
    Fig. 4. (Color online) Progresses of the proposed algorithm and the algorithm in Ref. [22] when a local minima exists in the normalized PMϕ1, Δϕ2) with a 75% to 25% power ratio and a π/2 phase difference between the two inputs of the first MMI.
    (Color online) Experimental setup of the multi-channel MMW signals generation base on the proposed silicon photonic MMW generator.
    Fig. 5. (Color online) Experimental setup of the multi-channel MMW signals generation base on the proposed silicon photonic MMW generator.
    (Color online) On-chip automated polarization-tuning progresses of the 7-channel signal lights.
    Fig. 6. (Color online) On-chip automated polarization-tuning progresses of the 7-channel signal lights.
    (Color online) (a) Waveforms and the demodulated constellation diagrams of the generated 7-channel QPSK MMW signals. (b) Optical spectrum of channel-1 of the MMW signal before the heterodyne beating. (c) Electrical spectrum of channel-1 of the MMW signal after the heterodyne beating. (d) Measured SNRs of the 7 channels of demodulated QPSK signal.
    Fig. 7. (Color online) (a) Waveforms and the demodulated constellation diagrams of the generated 7-channel QPSK MMW signals. (b) Optical spectrum of channel-1 of the MMW signal before the heterodyne beating. (c) Electrical spectrum of channel-1 of the MMW signal after the heterodyne beating. (d) Measured SNRs of the 7 channels of demodulated QPSK signal.
    Ruiyuan Cao, Yu He, Qingming Zhu, Jingchi Li, Shaohua An, Yong Zhang, Yikai Su. Multi-channel 28-GHz millimeter-wave signal generation on a silicon photonic chip with automated polarization control[J]. Journal of Semiconductors, 2019, 40(5): 052301
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