Merging and disconnecting resonance tongues in a pulsing excitable microlaser with delayed optical feedback
Soizic Terrien, Bernd Krauskopf, Neil G.R. Broderick, Venkata A., Pammi, R\'emy Braive, Isabelle Sagnes, Gr\'egoire Beaudoin, Konstantinos, Pantzas, Sylvain Barbay

TL;DR
This paper investigates complex pulsing dynamics in a delayed-feedback microlaser, revealing how resonance tongues influence multistability, chaos, and the emergence of unconnected periodic pulsing regions through bifurcation analysis.
Contribution
It provides a detailed bifurcation analysis of resonance tongues in a delayed-feedback microlaser, explaining the mechanisms behind complex pulsing regimes and their experimental observations.
Findings
Resonance tongues are crucial for complex pulsing dynamics.
Unconnected resonance regions result from saddle transitions of bifurcations.
The structure of resonance tongues depends sensitively on the pump parameter.
Abstract
Excitability, encountered in numerous fields from biology to neurosciences and optics, is a general phenomenon characterized by an all-or-none response of a system to an external perturbation. When subject to delayed feedback, excitable systems can sustain multistable pulsing regimes, which are either regular or irregular time sequences of pulses reappearing every delay time. Here, we investigate an excitable microlaser subject to delayed optical feedback and study the emergence of complex pulsing dynamics, including periodic, quasiperiodic and irregular pulsing regimes. This work is motivated by experimental observations showing these different types of pulsing dynamics. A suitable mathematical model, written as a system of delay differential equations, is investigated through an in-depth bifurcation analysis. We demonstrate that resonance tongues play a key role in the emergence of…
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Taxonomy
TopicsNonlinear Dynamics and Pattern Formation · Mechanical and Optical Resonators · Neural Networks and Reservoir Computing
