Startseite Mitigating the Effects of Non-Linear Distortion Using Polarizers in Microwave Photonic Link
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Mitigating the Effects of Non-Linear Distortion Using Polarizers in Microwave Photonic Link

  • Sarika Singh EMAIL logo , Sandeep K. Arya und Shelly Singla
Veröffentlicht/Copyright: 18. Dezember 2019
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Abstract

A scheme to suppress nonlinear intermodulation distortion in microwave photonic (MWP) link is proposed by using polarizers to compensate inherent non-linear behavior of dual-electrode Mach-Zehnder modulator (DE-MZM). Insertion losses and extinction ratio have also been considered. Simulation results depict that spurious free dynamic range (SFDR) of proposed link reaches to 130.743 dB.Hz2/3. A suppression of 41 dB in third order intermodulation distortions and an improvement of 15.3 dB is reported when compared with the conventional link. In addition, an electrical spectrum at different polarization angles is extracted and 79 is found to be optimum value of polarization angle.

Keywords: MWP; polarizer; DE-MZM; IMD; SFDR

References

1. Charbonnier B, Le Bras H, Urvoas P, N’Guyen QT, Huchard M, Pizzinat A. Upcoming perspectives and future challenges for RoF, Microwave Photonics, 2007 Interntional Topical Meeting on 3-5 Oct. 2007 at Victoria, BC, Canada.10.1109/MWP.2007.4378125Suche in Google Scholar

2. Capmany J, Novak D. Microwave photonics combines two worlds. Nat Photon. 2007;1:319–30.10.1038/nphoton.2007.89Suche in Google Scholar

3. Business News. Wireless future drives microwave photonics. Nat Photon. 2011;5:724.10.1038/nphoton.2011.292Suche in Google Scholar

4. Berceli T, Herczfeld PR. Microwave photonics v/s historical perspective. IEEE Trans Microw Theory Tech. 2010;58:2992–3000.10.1109/TMTT.2010.2076932Suche in Google Scholar

5. Rahman MS, Lee JH. Radio over fiber as a cost effective technology for transmission of WiMAX signals, world academy of science. Engg Tech. 2009;56:424–9.Suche in Google Scholar

6. Sharma V, Singh A, Sharma AK. Challenges to radio over fiber (MWP) technology and its mitigation schemes – a review. Optik. 2012;123:338–42.10.1016/j.ijleo.2011.02.031Suche in Google Scholar

7. Singh SP, Singh N. Nonlinear effects in optical fibers: origin, management and application, progress in electromagnetic research. PIER. 2007;73:249–75.10.2528/PIER07040201Suche in Google Scholar

8. Singla S, Arya SK. Simulative investigation of third order-IM terms in multi-tone MWP system. Optik. 2014;125:3756–8.10.1016/j.ijleo.2014.01.140Suche in Google Scholar

9. Xu E, Zhang M, Li P, Zhang Z. Dynamic-range enhancement in microwave photonic link based on single-sideband phase modulation, Asia Communications and Photonics Conference 2016, paper AF2A.16.10.1364/ACPC.2016.AF2A.16Suche in Google Scholar

10. Chen ZY, Yan LS, Ye J, Pan W, Luo B, Zou XH, et al. Pre-distortion compensation of dispersion in APL based on DSB modulation. IEEE Photon Tech Lett. 2013;25:1129–32.10.1109/LPT.2013.2261486Suche in Google Scholar

11. Cui Y, Dai Y, Yin F, Lv Q, Li J, Xu K, et al. Enhanced spurious free dynamic range in intensity modulated analog photonic link using digital post processing. IEEE Photon J. 2014;6:7900608.10.1109/JPHOT.2014.2308196Suche in Google Scholar

12. Zhu Z, Zhao S, Li X, Qu K, Lin T. A linearized analog photonic link based on a single z-Cut LiNbO3 dual-output Mach–Zehnder modulator. IEEE Photon J. 2017;9:7201810.10.1109/JPHOT.2017.2695000Suche in Google Scholar

13. Zhai W, Wen A, Zhang H, Zhang W, Liang D. Improvement of linearity and mitigation of dispersion-induced power fading in multi-channel phase-modulated analog photonic link based on a polarization modulator. J Lightwave Technol. 2018;36:3976–87.10.1109/JLT.2018.2851601Suche in Google Scholar

14. Han X, Chen X, Yao J. Simultaneous even-and third-order distortion suppression in a microwave photonic link based on orthogonal polarization modulation, balanced detection, and optical sideband filtering. Opt Exp. 2016;24:14812–27.10.1364/OE.24.014812Suche in Google Scholar PubMed

15. Kui WS, Sheng GY, Jun WA, Liu L. A microwave photonic link with high spurious-free dynamic range based on a parallel structure. Optoelectron Lett. 2015;11:137–40.10.1007/s11801-015-4228-6Suche in Google Scholar

16. Zhu ZH, Zhao SH, Tan QG, Jiang W. A linearized optical single-sideband modulation analog microwave photonic link using dual-parallel interferometers. IEEE Photon J. 2013;5:5501712.10.1109/JPHOT.2013.2281613Suche in Google Scholar

17. Jiang W, Tan Q, Qin Q, Liang D, Li X, Ma H, et al. A linearization analog photonic link with high third-order intermodulation distortion suppression based on dual-parallel Mach–Zehnder modulator. IEEE Photon J. 2015;7:7902208.10.1109/JPHOT.2015.2438445Suche in Google Scholar

18. Liu W, Ma J, Zhang J. A novel scheme to suppress the third-order intermodulation distortion based on dual-parallel Mach–Zehnder modulator. Photonic Network Commun. 2018;36:140–15.10.1007/s11107-018-0765-9Suche in Google Scholar

19. Zhu Z, Zhao S, Li X, Qu K, Lin T, Lin B. Dynamic range improvement for an analog photonic link using an integrated electro-optic dual polarization modulator. IEEE Photon J. 2016;8:7903410.10.1109/JPHOT.2016.2547844Suche in Google Scholar

20. Masella B, Zhang X. Linearized optical single-sideband Mach-Zhender modulator for radio-over-fiber systems. IEEE Photon Technol Lett. 2007;19:2024–6.10.1109/LPT.2007.908451Suche in Google Scholar

21. Chen ZY, Yan L, Pan W, Luo B, Zou X, Guo Y, et al. SFDR enhancement in analog photonic links by simultaneous compensation for dispersion and nonlinearity. Opt Exp. 2013;21:20 999–21 009.10.1364/OE.21.020999Suche in Google Scholar PubMed

22. Chen X, Li W, Yao J. Microwave photonic link with improved dynamic range using a polarization modulator. IEEE Photon Technol Lett. 2013;25:1373–6.10.1109/LPT.2013.2266115Suche in Google Scholar

23. Singh S, Arya SK, Singla S. RoF system based on phase modulator employing polarization for linearization. J Opt. 2018;47:460–6.10.1007/s12596-018-0490-xSuche in Google Scholar

Received: 2019-09-17
Accepted: 2019-12-02
Published Online: 2019-12-18
Published in Print: 2021-07-27

© 2019 Walter de Gruyter GmbH, Berlin/Boston

Artikel in diesem Heft

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  2. Amplifiers
  3. Performance Analysis of FBG WDM System using Different Optical Amplifiers
  4. Devices
  5. Performance Evaluation of Two Dimensional Photonic Crystal Based All Optical AND/OR Logic Gates
  6. A Radio over Fiber (RoF) Based Single Sideband Modulated Passive Optical Network (PON) Using Mach Zender Modulator Based on Different Electrical Phase Shifts
  7. Analysis of Hybrid Buffer Based Optical Data Center Switch
  8. An Optical Majority Gate Using Photonic Crystal Based Nonlinear Resonant Cavity
  9. Analysis of AWG-Based Optical Data Center Switches
  10. Fibers
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  12. Networks
  13. On the Cost Minimization in Space Division Multiplexing Based Elastic Optical Networks
  14. Systems
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  16. Performance Analysis of Free Space Optics and Inter-Satellite Communicating System Using Multiplexing Techniques – A Review
  17. To Overcome the Effects of Self-Phase Modulation in Single-Tone RoF System by Employing SSP Compensation Technique
  18. Analysis of Optical Wireless Communication Systems
  19. Investigation of Cross-Phase Modulation-Induced Crosstalk with Sub-Planck Higher-Order Dispersion Parameters in Optical Transmission Systems
  20. Performances Analysis of Novel Proposed Code for SAC-OCDMA System
  21. Design and Implementation of OFDM System using QPSK & QAM
  22. To Mitigate the Effect of Cross-Phase Modulation by Employing PC-DCF Technique in Multi-Tone RoF System
  23. Mitigating the Effects of Non-Linear Distortion Using Polarizers in Microwave Photonic Link
  24. Theory
  25. Improving Performance of Optical Networks by Using FRPI Algorithm
  26. Performance Evaluation of Novel Dynamic Data Replication Algorithm under Optical Burst Switching
  27. Performance Analysis of Relay Assisted Multihop Coherant OFDM System over Malaga Distribution with Pointing Errors
Heruntergeladen am 31.10.2025 von https://www.degruyterbrill.com/document/doi/10.1515/joc-2019-0244/html
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