Fast and accurate modeling of Kerr-Brillouin combs in Fabry-Perot resonators

Abstract

We introduce a new mean-field equation for modeling Fabry-Perot resonators filled with a dispersive medium exhibiting both Brillouin and Kerr nonlinearities, e.g., an optical fiber. This model is derived from a unified framework that accounts for Brillouin scattering and four-wave mixing. It involves two coupled nonlinear Schrödinger equations for the forward and backward propagating fields, alongside a single equation governing the acoustic oscillation. Under the standard assumptions for the mean-field approach (high finesse, weak nonlinearity, and weak dispersion) we demonstrate that our model closely matches the original system. The simplified and elegant mathematical structure of our equation provides valuable physical insights. As a key example, we derive an expression for the growth rate of harmonic perturbations to the steady states. Additionally, our model facilitates fast and accurate numerical simulations using standard Fourier split-step methods. We highlight the effectiveness of this approach by simulating frequency comb generation in state-of-the-art high-Q fiber Fabry-Perot resonators.

Publication DOI: https://doi.org/10.1103/1cfh-8c16
Divisions: College of Engineering & Physical Sciences > Aston Institute of Photonics Technology (AIPT)
Aston University (General)
Additional Information: Copyright © 2025 American Physical Society. This is an accepted manuscript of an article published in Physical Review A. The published version is available at: https://doi.org/10.1103/1cfh-8c16
Publication ISSN: 1094-1622
Last Modified: 29 Sep 2025 07:42
Date Deposited: 26 Sep 2025 10:43
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Related URLs: https://journal ... .1103/1cfh-8c16 (Publisher URL)
PURE Output Type: Article
Published Date: 2025-09
Published Online Date: 2025-09-17
Accepted Date: 2025-08-28
Authors: Conforti, Matteo
Bunel, Thomas
Perego, Auro M. (ORCID Profile 0000-0001-5211-6513)
Mussot, Arnaud

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