Skip to content
Licensed Unlicensed Requires Authentication Published by De Gruyter April 5, 2019

Basic Functions of Fiber Bragg Grating Effects on the Optical Fiber Systems Performance Efficiency

  • IS Amiri , Ahmed Nabih Zaki Rashed EMAIL logo and P Yupapin

Abstract

The study presents the basic apodization and chirp functions based fiber Bragg grating (FBG) for upgrading optical fiber performance efficiency. Variations of apodization and chirp functions are studied with grating length variations. Optical power after FBG, signal to noise ratio, maximum Q-factor, and output power are measured in the presence of the chirp functions. Gaussian apodization function has outlined good performance than other proposed apodization functions. As well as linear chirp function is better performance than other chirp functions. The optical system performance tested with/without chirp effects with high bit rates.

References

1. Hassan MF. Optimization of hyperbolic tangent apodized chirped fiber Bragg gratings for dispersion compensation in optical fiber communication. Al-Qadisiya J Eng Sci. 2008;1:158–71.Search in Google Scholar

2. Litchinitser NM, Eggleton BJ, Agrawal GP. Dispersion of cascaded fiber gratings in WDM lightwave systems. J Lightwave Technol. 1998;16:1523–9.10.1109/50.704620Search in Google Scholar

3. Mohammadi S, Mozaffari S, Shahidi MM. Simulation of a transmission system to compensate dispersion in an optical fiber by chirp gratings. Int J Phys Sci. 2011;6:7354–60.10.5897/IJPS11.1504Search in Google Scholar

4. Othman M, Ismail MM, Sulaiman HA, Misran MH, Meor Said MA, Rahim YA, et al. An analysis of 10 Gbits/s optical transmission system using fiber Bragg grating (FBG). IOSR J Eng (IOSRJEN). 2012;2:55–61.10.9790/3021-02715561Search in Google Scholar

5. Zaki Rashed AN, Metwae’e M. Maximization of repeater spacing in ultra wide-wavelength-division multiplexing optical communication systems based on multi pumped laser diodes. J Russ Laser Res. 2013;34:255–61.10.1007/s10946-013-9349-4Search in Google Scholar

6. Zaki Rashed AN. High reliability optical interconnections for short range applications in high performance optical communication systems. Opt Laser Technol. 2013;48:302–8.10.1016/j.optlastec.2012.10.038Search in Google Scholar

7. Zaki Rashed AN. High efficiency wireless optical links in high transmission speed wireless optical communication networks. Int J Commun Syst. 2014;27:3416–27.10.1002/dac.2550Search in Google Scholar

8. Zaki Rashed AN, Saad AE-FA. Different electro-optical modulators for high transmission – data rates and signal-quality enhancement. J Russ Laser Res. 2013;34:336–45.10.1007/s10946-013-9359-2Search in Google Scholar

9. Singh K, Patterh SM, Bhamrah SM. A comparative analysis of dual-order bidirectional pumping schemes in optical fiber Raman amplification. J Opt Commun. 2019;40:1–6.10.1515/joc-2017-0018Search in Google Scholar

Received: 2019-02-07
Accepted: 2019-03-05
Published Online: 2019-04-05
Published in Print: 2022-10-26

© 2019 Walter de Gruyter GmbH, Berlin/Boston

Downloaded on 30.4.2024 from https://www.degruyter.com/document/doi/10.1515/joc-2019-0042/html
Scroll to top button