Abstract
The diversity of observed nonlinear dynamics in laser diodes subjected to optical feedback shows promise as an excellent candidate for chaos-based commercial applications. Thus, works in the last decade have primarily focused on system performances, geometric configurations, and balancing their trade-offs. We demonstrate an optical feedback system operating on phase-conjugate feedback exhibiting state-of-the-art chaos bandwidth values reaching ≈ 30 GHz. We report numerous high-frequency, spatiotemporally complex, chaotic dynamics undocumented in the past four decades. We highlight the underlying physics involving a three-tier temporal interaction mechanism between laser relaxation oscillations, phase-conjugate feedback induced external cavity modes, and chaotic bursts repeating each delay time in the extended cavity. We show supporting real-time high-definition system outputs captured by modern large bandwidth oscilloscopes. The presented work shows to our knowledge, the highest bandwidth and complexity entropy to-date in an optical chaos from a single laser, thereby proving the unnecessary need for further complexity using cascading lasers.
| Original language | English |
|---|---|
| Article number | 287 |
| Number of pages | 10 |
| Journal | Communications Physics |
| Volume | 5 |
| DOIs | |
| Publication status | Published - 16 Nov 2022 |
Bibliographical note
Funding Information:The presented study is funded by the following organizations: Région Grand-Est, Eurométropole de Metz, European Union (FEDER), Ministry of Higher Education and Research (FNADT), Departement de la Moselle, GDI Simulation.
Publisher Copyright:
© 2022, The Author(s).
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- 2 Membership of external research organisation
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CentraleSupélec (External organisation)
Malica, T. (Member)
May 2019 → Dec 2023Activity: Membership › Membership of external research organisation
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Université de Lorraine (External organisation)
Malica, T. (Member)
May 2019 → Dec 2023Activity: Membership › Membership of external research organisation
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