Highly Dispersive Optical Soliton Perturbation for Complex Ginzburg–Landau Equation, Implementing Three Forms of Self-Phase Modulation Structures with Power Law via Semi-Inverse Variation

Anjan Biswas*, Russell W. Kohl, Milisha Hart-Simmons, Oswaldo González-Gaxiola

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

This paper provides highly dispersive optical soliton solutions to the perturbed complex Ginzburg–Landau equation. The self-phase modulation structures are maintained in three forms, which are derived from the power law of nonlinearity with arbitrary intensity. The paper employs the semi-inverse variational principle as its integration scheme, as conventional methods are incapable for it. The amplitude–width relation of the solitons is reconstructed by employing Cardano’s method to solve a cubic polynomial equation. Also presented are the necessary parameter constraints that naturally arise from the scheme. These findings enhance our understanding of soliton dynamics and pave the way for further research into more complex nonlinear systems. Future studies may explore the implications of these results in various physical contexts, potentially leading to novel applications in fields such as fiber optics and quantum fluid dynamics.

Original languageEnglish
Article number68
JournalTelecom
Volume6
Issue number3
DOIs
Publication statusPublished - Sept 2025
Externally publishedYes

Keywords

  • Cardano
  • Ginzburg–Landau equation
  • Kudryashov model
  • perturbation
  • semi-inverse
  • solitons

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