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Comparison between Rate Equations Model and Traveling Wave Model in Large Signal Transient Response of Fabry-Perot Laser Diodes


Affiliations
1 Telecommunications Laboratory, University of Guelma, Algeria
     

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In this paper, we compare and analysis the large signal transient response of Fabry-Pérot semiconductor laser using two different theoretical models: rate equations model and traveling wave model.  The results are obtained by numerical solution of these two models and compared in terms of physical properties of the laser and proposed simulation techniques, which they show clearly an excellent agreement.

Keywords

Rate Equations Model, Traveling Wave Model, Fabry-Perot Laser Diodes, Transient Response.
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  • G. P. Agrawal, Fiber-Optic Communication Systems (Wiley, 2002).
  • D. J. Piprek, Optoelectronic Devices: Advanced Simulation and Analysis. Berlin, Germany: Springer-Verlag, 2005.
  • G. P. Agrawal and N. K. Dutta, Semiconductor Lasers, 2 ed. New York, NY: Van Nostrand Reinhold, 1993
  • T. Erneux and P. Glorieux, Laser Dynamics. Cambridge, U.K.:
  • Cambridge Univ. Press, 2010.
  • A. J. Lowery, “New dynamic semiconductor laser model based on the transmission-line modeling method,” Proc. Inst. Elect. Eng., pt. J, vol. 134, no. 5, pp. 281–289, 1987.
  • P. Vankwikelberge, G. Morthier, and R. Baets, “CLADISS—A longitudinal multimode model for the analysis of the static, dynamic, and stochastic behavior of diode lasers with distributed feedback,” IEEE J.Quantum Electron., vol. 26, pp. 1728–1741, Oct. 1990.
  • J. E. Carroll, J. E. A. Whiteaway, and R. G. S. Plumb, "Distributed feedback semiconductor lasers", IEE and SPIE, 1998.
  • L. M. Zhang and J. E. Carroll, “Large-signal dynamic model of the DFB laser,” IEEE J. Quantum Electron., vol. 28, pp. 604–611, Mar. 1992.
  • L. M. Zhang, J. E. Carroll, and C. Tsang, “Dynamic response of the
  • gain-coupled DFB laser,” IEEE J. Quantum Electron., vol. 29, pp.
  • –1727, 1993.
  • H. Kogelnik and C. V. Shank, “Coupled-wave theory of distributed feedback lasers,” J. Appl. Phys., vol. 43, pp. 2327–2335, 1978.
  • Bouchene Mohammed Mehdi and Hamdi Rachid, “Study of Fabry-Pérot laser oscillation field spectrum using Traveling Wave Model“ Accepted in 3rd International Conference on Embedded Systems in Telecommunications and Instrumentation (ICESTI'16), October 24 – 26,2016.
  • Hamdi Rachid and Bouchene Mohammed Mehdi , ‟ Analysis of Relative Intensity Noise in Fabry-Pérot Laser Diodes using Traveling Wave Model,” in Proc. International Conference Optics and Photonics (OPAL 2015),14 - 15 December 2015, Algiers, Algeria.
  • Radziunas, M., Wünsche, H. J., Krauskopf, B. and Wolfrum, M. 2006. “External Cavity Modes in Lang-Kobayashi and Traveling Wave Models.” Proc. SPIE 6184, 6184X.
  • M. Homar, J. Moloney, and M. San Miguel, “Travelling Wave Model of a Multimode Fabry-Pérot Laser in Free Running and ExternalCavity Configurations,” IEEE Journal of Quantum Electronics,,vol.32,no.3, pp. 553–566, Mar 1996.
  • A. F. J. Levi, Applied Quantum Mechanics. Cambridge, U.K.: Cambridge University Press, 2002

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  • Comparison between Rate Equations Model and Traveling Wave Model in Large Signal Transient Response of Fabry-Perot Laser Diodes

Abstract Views: 198  |  PDF Views: 2

Authors

Bouchene Mohammed Mehdi
Telecommunications Laboratory, University of Guelma, Algeria

Abstract


In this paper, we compare and analysis the large signal transient response of Fabry-Pérot semiconductor laser using two different theoretical models: rate equations model and traveling wave model.  The results are obtained by numerical solution of these two models and compared in terms of physical properties of the laser and proposed simulation techniques, which they show clearly an excellent agreement.

Keywords


Rate Equations Model, Traveling Wave Model, Fabry-Perot Laser Diodes, Transient Response.

References