Skip to main navigation Skip to search Skip to main content

Breather gas fission from elliptic potentials in self-focusing media

Gino Biondini*, Gennady El, Xu‐Dan Luo, Jeffrey Oregero, Alexander Tovbis

*Corresponding author for this work

    Research output: Contribution to journalArticlepeer-review

    1 Citation (Scopus)
    8 Downloads (Pure)

    Abstract

    We present an analytical model of integrable turbulence in the focusing nonlinear Schrödinger (fNLS) equation, generated by a one-parameter family of finite-band elliptic potentials in the semiclassical limit. We show that the spectrum of these potentials exhibits a thermodynamic band/gap scaling compatible with that of soliton and breather gases depending on the value of the elliptic parameter $m$ of the potential. We then demonstrate that, upon augmenting the potential by a small random noise (which is inevitably present in real physical systems), the solution of the fNLS equation evolves into a fully randomized, spatially homogeneous breather gas, a phenomenon we call breather gas fission. We show that the statistical properties of the breather gas at large times are determined by the spectral density of states generated by the unperturbed initial potential. We analytically compute the kurtosis of the breather gas as a function of the elliptic parameter $m$, and we show that it is greater than 2 for all non-zero $m$, implying non-Gaussian statistics Finally, we verify the theoretical predictions by comparison with direct numerical simulations of the fNLS equation. These results establish a link between semiclassical limits of integrable systems and the statistical characterization of their soliton and breather gases.
    Original languageEnglish
    Article number014204
    JournalPhysical Review E
    Volume111
    Issue number1
    DOIs
    Publication statusPublished - 6 Jan 2025

    Fingerprint

    Dive into the research topics of 'Breather gas fission from elliptic potentials in self-focusing media'. Together they form a unique fingerprint.

    Cite this