A photonic transmission link with enhanced dynamic range by incorporating phase shifters in dual drive dual parallel Mach–Zehnder modulator

被引:0
|
作者
Singh S. [1 ]
Arya S.K. [1 ]
Singla S. [2 ]
Berwal P. [3 ]
机构
[1] Department of Electronics and Communication Engineering, Guru Jambheshwar University of Science and Technology, Haryana, Hisar
[2] Department of Electronics and Communication Engineering, Greater Noida Institute of Technology, Uttar Pradesh, Greater Noida
[3] University Institute of Engineering and Technology, Maharishi Dayanand University, Haryana, Rohtak
关键词
DD-DPMZM; IMD3; MWP; SFDR;
D O I
10.1515/joc-2021-0080
中图分类号
学科分类号
摘要
A linearization scheme is proposed for microwave photonic link to enlarge spurious free dynamic range using a dual-electrode dual parallel Mach–Zehnder modulator (MZM). This scheme employs phase control method to improve performance of the link by adjusting phase of radio frequency (RF) signals and bias voltages of optical modulator. Optical single sideband modulation is achieved through sub-modulators of dual parallel MZM which increases efficiency of the link. The simulated results show that third order intermodulation distortion is suppressed by 28 dB when the input RF signals are 9.1 and 9.5 GHz and noise floor is at −161 dBm/Hz. The spurious free dynamic range is also improved by 12.6 dB. © 2023 Walter de Gruyter GmbH. All rights reserved.
引用
收藏
页码:S435 / S439
页数:4
相关论文
共 50 条
  • [21] Optical phase cloning by an integrated dual-parallel Mach-Zehnder modulator
    Burkart, Johannes
    Sala, Tommaso
    Kassi, Samir
    Romanini, Daniele
    Marangoni, Marco
    OPTICS LETTERS, 2015, 40 (05) : 816 - 819
  • [22] Generation of Nyquist pulse sequences using dual parallel Mach-Zehnder modulator and phase modulator
    Li, Jiakang
    Yao, Yusheng
    Jia, Dongfang
    Ge, Chunfeng
    Wang, Zhaoying
    Yang, Tianxin
    TERAHERTZ, RF, MILLIMETER, AND SUBMILLIMETER-WAVE TECHNOLOGY AND APPLICATIONS XVII, 2024, 12885
  • [23] Photonic generation of a phase-coded microwave signal based on a single dual-drive Mach-Zehnder modulator
    Tang, Zhenzhou
    Zhang, Tingting
    Zhang, Fangzheng
    Pan, Shilong
    OPTICS LETTERS, 2013, 38 (24) : 5365 - 5368
  • [24] Single Passband Microwave Photonic Filter using a Dual-Parallel Mach-Zehnder Modulator
    Song, Shijie
    Zhang, Shuo
    Liu, Bo
    Chew, Suen Xin
    Yi, Xiaoke
    Linh Nguyen
    2017 ASIA COMMUNICATIONS AND PHOTONICS CONFERENCE (ACP), 2017,
  • [25] Photonic generation of triangular waveform signals by using a dual-parallel Mach-Zehnder modulator
    Li, J.
    Ning, T.
    Pei, L.
    Peng, W.
    Jia, N.
    Zhou, Q.
    Wen, X.
    OPTICS LETTERS, 2011, 36 (19) : 3828 - 3830
  • [26] Linearity characterization of a dual-parallel Mach-Zehnder modulator
    Zhou, Yanyang
    Zhou, Linjie
    Liu, Shen
    Zhu, Haike
    Wang, Minjuan
    Li, Xinwan
    Chen, Jianping
    2016 OPTICAL FIBER COMMUNICATIONS CONFERENCE AND EXHIBITION (OFC), 2016,
  • [27] Anti-dispersion phase-tunable microwave mixer based on a dual-drive dual-parallel Mach-Zehnder modulator
    Xie, Mutong
    Zhao, Mingyang
    Lei, Mingzheng
    Wu, Yongle
    Liu, Yuanan
    Gao, Xinlu
    Huang, Shanguo
    OPTICS EXPRESS, 2018, 26 (01): : 454 - 462
  • [28] A triple-frequency microwave photonic link based on a polarization-multiplexing dual-parallel Mach-Zehnder modulator
    Li, Kexin
    Zhang, Hongbiao
    Wang, Yunxin
    Yang, Feng
    Wang, Dayong
    Yang, Dengcai
    REAL-TIME PHOTONIC MEASUREMENTS, DATA MANAGEMENT, AND PROCESSING IV, 2019, 11192
  • [29] Microwave Photonic Phase Shifter Based on an Integrated Dual-polarization Dual-parallel Mach-Zehnder Modulator without Optical Filter
    Guo, Zhentao
    Ma, Jianxin
    Huang, Shanguo
    Gao, Xinlu
    FIBER AND INTEGRATED OPTICS, 2019, 38 (04) : 208 - 217
  • [30] Linear and stable photonic radio frequency phase shifter based on a dual-parallel Mach-Zehnder modulator using a two-drive scheme
    Shen, Jianguo
    Wu, Guiling
    Zou, Weiwen
    Chen, Ruihao
    Chen, Jianping
    APPLIED OPTICS, 2013, 52 (34) : 8332 - 8337