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Codes to "Enhanced soliton stability in bi-directionally coupled laser-microresonator systems"

Bengel, Lukas 1; Peng, Huanfa [Beteiligte*r] 2; Rijk, Björn de [Beteiligte*r] 1; Koos, Christian [Beteiligte*r] 2; Reichel, Wolfgang [Beteiligte*r] 1
1 Institut für Analysis (IANA), Karlsruher Institut für Technologie (KIT)
2 Institut für Photonik und Quantenelektronik (IPQ), Karlsruher Institut für Technologie (KIT)

Abstract:

We investigate a bi-directionally coupled system consisting of a Kerr-nonlinear microresonator and a continuous-wave single-mode semiconductor laser. Inside the resonator, a forward-propagating and a backscattered field interact nonlinearly, while a fraction of the backscattered field is fed back into the laser cavity. We show in this paper that the interaction of the laser with the feedback opens up new ways of stabilizing 1-solitons. Using numerical bifurcation analysis, we systematically identify existence ranges of time-harmonic 1-soliton states in the anomalous dispersion regime. We demonstrate that, in contrast to the uni-directional configuration, the bi-directional coupling introduces a dynamic self-correcting response of the laser frequency that stabilizes 1-solitons. These enhanced stability properties of 1-solitons thus enable robust and self-started frequency-comb generation, consistent with the existing experimental observations.


Zugehörige Institution(en) am KIT Institut für Analysis (IANA)
Institut für Photonik und Quantenelektronik (IPQ)
Publikationstyp Forschungsdaten
Publikationsdatum 09.10.2026
Erstellungsdatum 07.10.2026
Identifikator DOI: 10.35097/ccmqsda449ghm9k6
KITopen-ID: 1000197653
Lizenz Creative Commons Namensnennung – Nicht kommerziell – Weitergabe unter gleichen Bedingungen 4.0 International
Projektinformation SFB 1173, 258734477 (DFG, DFG KOORD, SFB 1173/3)
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Forschungsdaten/Software
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The code is written and tested with MATLAB version R2024b.

The codes needs the software package pde2path (v3.0) available at https://www.staff.uni-oldenburg.de/hannes.uecker/pde2path/.

The figures of the paper can be generated as follows

  1. run "setpde2path.m" (contained in the pde2path folder)
  2. run "main.m"

This creates the folder "figures" with the images of the paper.

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