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Performance Comparison of DCF and FBG as Dispersion Compensation Techniques at 100 Gbps Over 120 km Using SMF

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Nanoelectronics, Circuits and Communication Systems

Part of the book series: Lecture Notes in Electrical Engineering ((LNEE,volume 511))

Abstract

The fusion of EDFA and optical fiber causes an expansion in the transmission capacity over the large distances and thus making optical fiber a prevalent broadband communication technique. The practical execution of EDFA offers long transmission distances with less attenuation. However, in order to get high transmission range with high data rates using existing SMF, then techniques must be there to compensate the dispersion caused by fiber nonlinearity. In optical fiber communication, DCF and FBG are the trending dispersion compensation techniques. The use of DCF and FBG as a method of compensation of dispersion can notably heighten the overall performance of the system. In this paper, DCF and FBG as dispersion compensator are compared in terms of Q-factor and BER at 100 Gbps launched over an SMF of 120 km by using Optisystem 7.0 software. On the basis of results, it is suggested to use DCF as a best chromatic dispersion compensation technique in pre-compensation mode.

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References

  1. Yuhu S (2011) Research on the dispersion problem in high speed optical communication systems. IEEE, pp 4742–4745

    Google Scholar 

  2. Dilendorfs V, Spolitis S, Bobrovs V (2016) Effectiveness evaluation of dispersion compensation methods for fiber optical transmission systems. In: Progress in electromagnetic research symposium (PIERS), 8–11 Aug 2016, pp 3759–3763

    Google Scholar 

  3. Li MJ (2001) Recent progress in fiber dispersion compensators. ECOC, pp 486–489

    Google Scholar 

  4. Ilavarasan T, Meenakshi M (2015) An overview of fiber dispersion and nonlinearity compensation techniques in optical orthogonal frequency division multiplexing systems. Springer, Heidelberg

    Google Scholar 

  5. Dar AB, Jha RK (2017) Chromatic dispersion compensation techniques and characterization of fiber Bragg grating for dispersion compensation. Springer, Heidelberg

    Google Scholar 

  6. Chan W, Li S, Lu P, Wang D, Luo W (2010) Dispersion compensation optical fiber modules for 40 Gbps WDM communication systems. Springer, Heidelberg

    Google Scholar 

  7. Sumetsky M, Eggleton BJ (2005) Fiber Bragg gratings for dispersion compensation in optical communication systems. Springer, Heidelberg, pp 256–278

    Google Scholar 

  8. Spolitis S, Ivanovs G (2011) Extending the reach of DWDM-PON access network using chromatic dispersion compensation. IEEE, pp 29–33

    Google Scholar 

  9. Eggleton BJ, Stephens T, Krug PA, Dhosi G, Brodzeli Z, Ouellette F (1996) Dispersion compensation using a fiber grating in transmission. Electron Lett 32(17):1610–1611

    Google Scholar 

  10. Brennan III JF (2005) Broadband fiber Bragg gratings for dispersion management. Springer, Heidelberg, pp 397–433

    Google Scholar 

  11. Bobrovs V, Spolitis S, Ivanovs G (2012) Comparison of chromatic dispersion compensation techniques for WDM-PON solution. IEEE, pp 64–67

    Google Scholar 

  12. Fews HS, Stephens MFC, Straw A, Forysiak W, Nayar BK, Gleeson LM (2006) Experimental comparison of fiber and grating based dispersion compensation schemes for 40 channel 10 Gbps WDM systems. IEEE

    Google Scholar 

  13. Patnaik B, Sahu PK (2013) Ultra high capacity 1.28 Tbps DWDM system design and simulation using optimized modulation formats. Elsevier, New York, pp 1567–1573

    Google Scholar 

  14. Park SG, Gnauck AH, Weisenfeld JM, Garrett LD (2000) 40 Gbps Transmission over multiple 120 km spans of conventional single mode fiber using highly dispersed pulses. IEEE 12(8):1085–1087

    Google Scholar 

  15. Kaur R (2016) Analysis on dispersion compensation with DCF on opti system—a review. IJES 17:390–396

    Google Scholar 

  16. Panda TK, Parakram K, Mishra R, Sinha A (2016) Performance comparison of dispersion compensation in a pre, post and symmetrical arrangement using DCF for long haul optical communication. AIJET 3(7):14–20

    Google Scholar 

  17. Yadhav M, Jaiswal AK, Agrawal N (2015) Design performance of high speed optical fiber WDM system with optimally placed DCF for dispersion compensation. IJCA 122(20)

    Google Scholar 

  18. Khatoon S, Jaiswal AK, Agrawal A (2017) Performance evaluation of post and symmetrical DCF technique with EDFA in 32 × 10, 32 × 20 and 32 × 40 Gbps WDM systems. IJCET 7(4)

    Google Scholar 

  19. Xie T (2014) Reparation of chromatic dispersion using dispersion compensation bank and BER analysis at various power level in 40 Gbps fiber optics system. IEEE, pp 1058–1062

    Google Scholar 

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Correspondence to Ashwani Sharma .

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Sharma, A., Singh, I., Bhattacharya, S., Sharma, S. (2019). Performance Comparison of DCF and FBG as Dispersion Compensation Techniques at 100 Gbps Over 120 km Using SMF. In: Nath, V., Mandal, J. (eds) Nanoelectronics, Circuits and Communication Systems . Lecture Notes in Electrical Engineering, vol 511. Springer, Singapore. https://doi.org/10.1007/978-981-13-0776-8_40

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  • DOI: https://doi.org/10.1007/978-981-13-0776-8_40

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  • Publisher Name: Springer, Singapore

  • Print ISBN: 978-981-13-0775-1

  • Online ISBN: 978-981-13-0776-8

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