Bifurcation analysis of the Yamada model for a pulsing semiconductor laser with saturable absorber and delayed optical feedback
Soizic Terrien, Bernd Krauskopf, Neil G. R. Broderick

TL;DR
This paper analyzes how delayed optical feedback influences the complex self-pulsing dynamics of a semiconductor laser with a saturable absorber, revealing multistability and sensitivity to perturbations through bifurcation analysis.
Contribution
It provides the first detailed bifurcation analysis of the Yamada model with delay, uncovering new feedback-induced dynamics and multistability in self-pulsing semiconductor lasers.
Findings
Increased feedback delay leads to complex dynamics including quasi-periodic oscillations.
Multistability with up to five stable periodic solutions was observed.
The system's basins of attraction exhibit a Cantor set-like structure, indicating high sensitivity.
Abstract
Semiconductor lasers exhibit a wealth of dynamics, from emission of a constant beam of light, to periodic oscillations and excitability. Self-pulsing regimes, where the laser periodically releases a short pulse of light, are particularly interesting for many applications, from material science to telecommunications. Self-pulsing regimes need to produce pulses very regularly and, as such, they are also known to be particularly sensitive to perturbations, such as noise or light injection. We investigate the effect of delayed optical feedback on the dynamics of a self-pulsing semiconductor laser with saturable absorber (SLSA). More precisely, we consider the Yamada model with delay -- a system of three delay-differential equations (DDEs) for two slow and one fast variable -- which has been shown to reproduce accurately self-pulsing features as observed in SLSA experimentally. This model…
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Taxonomy
TopicsNonlinear Dynamics and Pattern Formation · Semiconductor Lasers and Optical Devices · Neurobiology and Insect Physiology Research
