Home To Overcome the Effects of Self-Phase Modulation in Single-Tone RoF System by Employing SSP Compensation Technique
Article
Licensed
Unlicensed Requires Authentication

To Overcome the Effects of Self-Phase Modulation in Single-Tone RoF System by Employing SSP Compensation Technique

  • Namita Kathpal EMAIL logo and Amit Kumar Garg
Published/Copyright: August 8, 2018
Become an author with De Gruyter Brill

Abstract

Self-Phase Modulation affects the performance of Radio over Fiber (RoF) system by inducing spectral broadening of the transmitted pulse and thereby produces dispersion. This paper analyses the effects of SPM on optical pulse propagating through the fiber and proposed a SSP (symmetrical-symmetrical-post) compensation technique to overcome the effects of SPM in single-tone RoF system. The simulation results reveal that the pulse broadening due to SPM is reduced by utilizing SSP compensation technique in the transmission channel as it provides a 2 dB increase in OSNR as compared to the conventional compensation technique. The proposed technique provides an optimum result at a bit rate of 40 Gbps and launched power of 10 mW over a transmission distance of 400 km for mitigating SPM effects.

References

1. Singh SP, Iyer S, Kar S, Jain VK. Study on mitigation of transmission impairments and issues and challenges with PLIA-RWA in optical WDM networks. J Opt Commun. 2012;33:83–101.10.1515/joc-2012-0015Search in Google Scholar

2. Pamukti B, Perdana D. Non-linear effects of high rate soliton transmission on DWDM optical fiber communication system. 2016 1st International Conference on Information Technology, Information Systems and Electrical Engineering (ICITISEE), Yogyakarta, Indonesia. 2016;26–30.10.1109/ICITISEE.2016.7803042Search in Google Scholar

3. Van Howe J, Zhu G, Xu C. Compensation of self-phase modulation in fiber- based chirped-pulse amplification systems. Opt Lett. 2006;31:1756–58.10.1109/CLEO.2006.4627649Search in Google Scholar

4. Mikhailov V, Doerr CR, Appathurai S, Killey RI, Bayvel P. Fiber nonlinearity and dispersion mitigation in 40-Gb/s NRZ WDM transmission using a multichannel optical equalizer. IEEE Photonics Technol Lett. 2006;18:376–78.10.1109/LPT.2005.861965Search in Google Scholar

5. Tariq S, Hamza MY, Awais MM, Yang S. Mitigation of the effects of self phase modulation and group-velocity dispersion in fiber optic communications: dispersion- and power-map cooptimization using the genetic algorithm. Opt Eng. 2008;47:075003. Available from: http://opticalengineering.spiedigitallibrary.org/article.aspx?doi=10.1117/1.2955816.10.1117/1.2955816Search in Google Scholar

6. Rozen O, Sadot D, Katz G, Levy A, Mahlab U. Dispersion compensation of self phase modulation impairment in optical channel using MLSE. Proc 2008 10th Anniv Int Conf Transparent Opt Networks, ICTON. 2008;1:178–81.10.1109/ICTON.2008.4598401Search in Google Scholar

7. Talukder MA, Islam MN. A long-haul wavelength division multiplexed system using standard single-mode fiber in presence of self-phase modulation. Optik. 2009;120:356–63.10.1016/j.ijleo.2007.02.013Search in Google Scholar

8. Kim K, Jeong J, Lee J. Effect of fiber dispersion and self-phase modulation in multi-channel subcarrier multiplexed optical signal transmission. J Opt Soc Korea. 2010;14:351–56.10.3807/JOSK.2010.14.4.351Search in Google Scholar

9. Tiwari V, Sikdar D, Jyothi MN, Dixit G, Chaubey VK. Investigation of optimum pulse shape for 112 Gbps DP-DQPSK in DWDM transmission. Opt – Int J Light Electron Opt. 2013;124:5567–72. Available from: http://dx.doi.org/10.1016/j.ijleo.2013.03.157.10.1016/j.ijleo.2013.03.157Search in Google Scholar

10. Liu X, Luan H, Lin X, Lan B, Dai B. SPM compensation for long-haul CO-OFDM systems with midlink optical phase conjugation. Optik. 2013;124:1892–96. Available from: http://dx.doi.org/10.1016/j.ijleo.2012.05.031.10.1016/j.ijleo.2012.05.031Search in Google Scholar

11. Hario F, Pramono SH, Mustika IW, Susanto A. Mitigation of nonlinear impact on optical fiber. Proceedings – 2017 7th International Annual Engineering Seminar InAES 2017. 2017;1–4.10.1109/INAES.2017.8068549Search in Google Scholar

12. Liu X, Lee B. A fast method for nonlinear Schrodinger equation. IEEE Photonics Technol Lett. 2003;15:1549–51. Availablefrom: http://ieeexplore.ieee.org/lpdocs/epic03/wrapper.htm?arnumber=1237584.10.1109/LPT.2003.818679Search in Google Scholar

13. Won PC, Zhang W, Williams JAR. Self-phase modulation dependent dispersion mitigation in high power SSB and DSB + dispersion compensated modulated radio-over-fiber links. IEEE MTT-S Int Microw Symp Dig. 2006;1947–50. DOI: 10.1109/MWSYM.2006.249456.10.1109/MWSYM.2006.249815Search in Google Scholar

14. Boscolo S, Audo F, Finot C. Impact of initial pulse characteristics on the mitigation of self-phase modulation by sinusoidally time varying phase. Opt Quantum Electron. 2018;50:1–19.10.1007/s11082-018-1319-1Search in Google Scholar

15. Shi Q, Ovadia S. Effects of clipping-induced impulse noise in externally modulated multichannel AM/M-QAM video transmission systems. IEEE Trans Commun. 1998;46:1448–50.10.1109/26.729388Search in Google Scholar

16. Paloi F, Mirza T, Haxha S. Optimisation of dispersion compensating in a long-haul fibre for RF transmission of up to 100 Gbit/s by using RZ and NRZ formats. Optik. 2017;131:640–54. Available from: http://dx.doi.org/10.1016/j.ijleo.2016.11.202.10.1016/j.ijleo.2016.11.202Search in Google Scholar

Received: 2018-06-18
Accepted: 2018-07-26
Published Online: 2018-08-08
Published in Print: 2021-07-27

© 2018 Walter de Gruyter GmbH, Berlin/Boston

Articles in the same Issue

  1. Frontmatter
  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
  11. Optimization of Concentration Quenching on Erbium Ytterbium Doped Wave Guide EYDWA Using for Extended Reach up to 160 Km of Hybrid Gigabit Passive Optical Networks and Free Space Optical Technologie “GPON-FSO”
  12. Networks
  13. On the Cost Minimization in Space Division Multiplexing Based Elastic Optical Networks
  14. Systems
  15. Incorporating SDC Module for ISI Compensation for a Long-Haul Co-OFDM System
  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
Downloaded on 11.9.2025 from https://www.degruyterbrill.com/document/doi/10.1515/joc-2018-0111/html?lang=en
Scroll to top button