Routes to chaos and multiple time scale dynamics in broadband bandpass nonlinear delay electro-optic oscillators

Michael Peil, Maxime Jacquot, Yanne Kouomou Chembo, Laurent Larger, and Thomas Erneux
Phys. Rev. E 79, 026208 – Published 9 February 2009

Abstract

The response of a nonlinear optical oscillator subject to a delayed broadband bandpass filtering feedback is studied experimentally, numerically, and analytically. The oscillator loop is characterized by a high cutoff frequency with a response time τ10ps and by a low cutoff frequency with a response time θ1μs. Moreover, the optoelectronic feedback also consists of a significant delay τD of the order of 100ns. Depending on two key physical parameters, the loop gain β and the nonlinearity operating point Φ, a large variety of multiple time scale regimes are reported, including slow or fast periodic oscillations with different waveforms, regular or chaotic breathers, slow time envelope dynamics, complex and irregular self-pulsing, and fully developed chaos. Many of these regimes are exhibiting new features that are absent in the classical first-order scalar nonlinear delay differential equations (DDEs), which differ in the modeling by the low cutoff only. Nearly all kinds of solutions are recovered numerically by a new class of integro-DDE (iDDE) that take into account both the high and low cutoff frequencies of the feedback loop. For moderate feedback gain, asymptotic solutions are determined analytically by taking advantage of the relative values of the time constants τ, θ, and τD. We confirm the experimental observation of two distinct routes to oscillatory instabilities depending on the value of Φ. One route is reminiscent of the square wave oscillations of the classical first-order DDE, but the other route is quite different and allows richer wave forms. For higher feedback gain, these two distinct regimes merge leading to complex nonperiodic regimes that still need to be explored analytically and numerically. Finally, we investigate the theoretical limits of our iDDE model by experimentally exploring phenomena at extreme physical parameter setting, namely, high-frequency locking at strong feedback gain or pulse packages for very large delays. The large variety of oscillatory regimes of our broadband bandpass delay electro-optic oscillator is attractive for applications requiring rich optical pulse sources with different frequencies and/or wave forms (chaos-based communications, random number generation, chaos computing, and generation of stable multiple GHz frequency oscillations).

    • Received 19 October 2008

    DOI:https://doi.org/10.1103/PhysRevE.79.026208

    ©2009 American Physical Society

    Authors & Affiliations

    Michael Peil1, Maxime Jacquot1, Yanne Kouomou Chembo1, Laurent Larger1, and Thomas Erneux2

    • 1UMR CNRS FEMTO-ST 6174/Optics Department, University of Franche-Comté, 16 Route de Gray, 25030 Besançon Cedex, France
    • 2Optique Non linéaire Théorique, Université Libre de Bruxelles, Campus Plaine CP 231, B-1050 Bruxelles, Belgium

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    Issue

    Vol. 79, Iss. 2 — February 2009

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