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Effect of Crosstalk in Super Dense Wavelength Division Multiplexing System using Hybrid Optical Amplifier

  • Chakresh Kumar EMAIL logo and Rakesh Goyal
Published/Copyright: July 22, 2017
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Abstract

Analysis of proposed 400×10 Gbps super dense wavelength division multiplexing (SD-WDM) system has been evaluated in term of crosstalk and optical signal to crosstalk ratio (OSCR). Amplification is carried out using RAMAN-EDFA hybrid optical amplifier (HOA) for the transmission of 300 km. The pump power of 550 mW at 1520 nm and 580 mW at 1530 nm are set to RAMAN and EDFA optical amplifier respectively. Further, the power level of 0 dBm with channel spacing of 100 GHz has shown the remarkable outcome of controlling the fiber nonlinearity to maintain the best rating optical communication for long haul distance.

References

1. Wang J, Sun X, Zhang M. Effect of group velocity dispersion on stimulated Raman crosstalk in multichannel transmission systems. IEEE Photon Technol Lett 1998;10:540–542.10.1109/68.662587Search in Google Scholar

2. Forghieri F, Tkach RW, Chraplyvy AR. Fiber nonlinearities and their impact on transmission systems. Optical Fiber Telecommun 1997;IIIA:196–264.10.1016/B978-0-08-051316-4.50012-6Search in Google Scholar

3. Christodoulides DN, Jander RB. Evolution of stimulated Raman crosstalk in wavelength division multiplexed sytems. IEEE Photon Technol Lett 1996;8:1722–1724.10.1109/68.544731Search in Google Scholar

4. Wang Z, Li A, Mahon CJ, Jacobsen G, Bodtker E. Performance limitations imposed by stimulated Raman scattering in optical WDM SCM video distribution systems. IEEE Photon Technol Lett 1995;7:1492–1494.10.1109/68.477293Search in Google Scholar

5. Forghieri F, Tkach RW, Chraplyvy AR. Effect of modulation statistics on Raman crosstalk inWDMsystems. IEEE Photon Technol Lett 1995;7:101–103.10.1109/68.363362Search in Google Scholar

6. Chraplyvy AR. Limitation on lightwave communications imposed by optical-fiber nonlinearities. J Lightwave Technol 1990;8:1548–1557.10.1109/50.59195Search in Google Scholar

7. Jiang W, Ye P. Crosstalk in fiber Raman amplification for WDM systems. J Lightwave Technol 1989;7:1407–1411.10.1109/50.50721Search in Google Scholar

8. Cotter D, Hill AM. Stimulated Raman crosstalk in optical transmission: Effectsof group velocity dispersion. Electron Lett 1984;20:185–187.10.1049/el:19840124Search in Google Scholar

9. Chraplyvy AR. Optical power limits in multi-channel wavelength-division-multilplexed systems due to stimulated Raman scattering. Electron Lett 1984;20:58–59.10.1049/el:19840040Search in Google Scholar

10. Chraplyvy AR, Henry PS. Performance degradation due to stimulated Raman scattering in wavelength-division-multiplexed optical fiber systems. Electron Lett 1983;19:641–643.10.1049/el:19830437Search in Google Scholar

11. Stolen RH. Nonlinearity in fiber transmission. Proc IEEE 1980 Oct;68:1232–1236.10.1109/PROC.1980.11837Search in Google Scholar

12. Stolen RH, Ippen EP. Raman gain in glass optical waveguides. Appl Phys Lett 1973;22:276–278.10.1063/1.1654637Search in Google Scholar

13. Inada Y, Sugahara H, Fukuchi K, Ogata T, Aoki Y. 32×40-Gb/s dense WDM transmission over 3000 km using double-hybrid fiber configuration. IEEE Photon Technol Lett 2002 Sept;14:1366–1368.10.1109/LPT.2002.801087Search in Google Scholar

14. Yonenaga K, Matsuura A, Kuwahara S, Yoneyama M, Miyamoto Y, Hagimoto K, et al. Dispersion-compensation-free 40-Gbit/s x 4-channel WDM transmission experiment using zero-dispersion-flattened transmission line, presented at the OFC ’98, San Jose, CA, Feb 1998.Search in Google Scholar

15. Musaka K, Akasaka Y, Suzuki Y, Kamiya T. Novel network fiber to manage dispersion at 1.55 µm with combination of 1.3 µm zero dispersion single mode fiber. In: Proc. ECOC ’97, vol. 1, Edinburgh, U.K., Sept 1997: 127–130.Search in Google Scholar

16. Ho K-P. Statistical properties of stimulated Raman crosstalk in WDM systems. J Lightwave Technol 2000 July;18:915–921.10.1109/50.850735Search in Google Scholar

17. Wang J, Sun X, Zhang M. Effect of group velocity dispersion on stimulated Raman crosstalk in multichannel transmission systems. IEEE Photon Technol Lett 1998 Apr;10:540–542.10.1109/68.662587Search in Google Scholar

18. Forghieri F, Tkach RW, Chraplyvy AR. Optical fiber telecommunications, Kaminov IP, Koch TL, editors. San Diego, CA: Academic, 1997, vol. IIIA, ch. 8.Search in Google Scholar

19. Sheetala A, Sharma AK. R.S. Kaler Simulation of high capacity 40 Gb/s long haul DWDM system using different modulation formats and dispersion compensation schemes in the presence of Kerr’s effect. Optik 2010;121:739–749.10.1016/j.ijleo.2008.11.009Search in Google Scholar

Received: 2017-06-17
Accepted: 2017-06-25
Published Online: 2017-07-22
Published in Print: 2019-10-25

© 2019 Walter de Gruyter GmbH, Berlin/Boston

Articles in the same Issue

  1. Frontmatter
  2. Amplifiers
  3. Performance Optimization of Optical Amplifiers for High Speed Multilink Optical Networks using Different Modulation Techniques
  4. Investigations of Different Amplifiers in 16 × 40 Gb/S WDM System
  5. Effect of Crosstalk in Super Dense Wavelength Division Multiplexing System using Hybrid Optical Amplifier
  6. Evaluation of Gain Spectrum of Silica-Based Single/Dual-Pumped Thulium-Doped Fiber Amplifier (TDFA) by Optimizing Its Physical and Pumping Parameters in the Scenario of Dense Wavelength Division Multiplexed Systems (DWDM)
  7. Devices
  8. Design of One-Bit Magnitude Comparator using Photonic Crystals
  9. A Novel Scheme for UDWDM-PON Broadband Access Network Using Injection-Locked Phase-to-Intensity Modulation Converter
  10. Loss-Less Elliptical Channel Drop Filter for WDM Applications
  11. Investigations with Reversible Feynman Gate and Irreversible Logic Schematics
  12. Analysis and Design of Coherent Combining of two Q-Switched Fiber Laser in Mach-Zehnder Type Cavity
  13. Fibers
  14. Proposed Square Lattice Photonic Crystal Fiber for Extremely High Nonlinearity, Birefringence and Ultra-High Negative Dispersion Compensation
  15. Ultra-low Loss with Single Mode Polymer-Based Photonic Crystal Fiber for THz Waveguide
  16. Measurements
  17. Investigation on Full Duplex WDM Hybrid Sensor to Measure the Strain
  18. Networks
  19. An Easy In-Service Optical IP Network System for Residential Complex, Employing 1550 nm-Band CWDM and Layer-3 Switch
  20. Systems
  21. High-Speed 120 Gbps AMI-WDM-PDM Free Space Optical Transmission System
  22. Impact of Different Modulation Data Formats on DWDM System Using SOA With Narrow-Channel Spacing
  23. Analysis of Atmospheric Turbulence on Free Space Optical System using Homotopy Perturbation Method
  24. Visible Light Communication – The Journey So Far
  25. Performance Investigation of 2-D Optical Orthogonal Codes for OCDMA
  26. Performance Analysis of 2-D Prime Codes Encoded Optical CDMA System
  27. An Approximation for BER of Optical Wireless System under Weak Atmospheric Turbulence using Point Estimate
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