Basic fractional nonlinear-wave models and solitons.

Chaos

Instituto de Alta Investigación, Universidad de Tarapacá, Casilla 7D, Arica, Chile.

Published: February 2024

AI Article Synopsis

  • The article summarizes one- and two-dimensional models for linear and nonlinear wave propagation in fractional media, focusing on Laskin's fractional quantum mechanics and its optical applications.
  • It discusses the use of Riesz fractional derivatives characterized by Lévy indices and explores one-dimensional solitons arising from fractional models with nonlinear terms.
  • The relevance of the variational approximation and recent experimental findings on fractional group-velocity dispersion in fiber lasers are also highlighted.

Article Abstract

This review article provides a concise summary of one- and two-dimensional models for the propagation of linear and nonlinear waves in fractional media. The basic models, which originate from Laskin's fractional quantum mechanics and more experimentally relevant setups emulating fractional diffraction in optics, are based on the Riesz definition of fractional derivatives, which are characterized by the respective Lévy indices. Basic species of one-dimensional solitons, produced by the fractional models which include cubic or quadratic nonlinear terms, are outlined too. In particular, it is demonstrated that the variational approximation is relevant in many cases. A summary of the recently demonstrated experimental realization of the fractional group-velocity dispersion in fiber lasers is also presented.

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Source
http://dx.doi.org/10.1063/5.0190039DOI Listing

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