Driven-Dissipative Dynamics of Atomic Ensembles in a Resonant Cavity II: Quasiperiodic Route to Chaos and Chaotic Synchronization
Aniket Patra, Boris L. Altshuler, and Emil A. Yuzbashyan

TL;DR
This paper investigates the route to chaos and synchronization phenomena in two atomic ensembles within a driven-dissipative cavity, revealing quasiperiodicity, symmetry breaking, and bifurcation mechanisms leading to chaotic synchronization.
Contribution
It provides a detailed analysis of the quasiperiodic route to chaos and the emergence of synchronized chaos, including bifurcation analysis and symmetry considerations in atomic ensembles.
Findings
Chaos emerges via quasiperiodicity through a Ruelle-Takens-Newhouse route.
Chaotic synchronization occurs through tangent bifurcation and intermittency.
Symmetry breaking leads to diverse attractors and coexistence of phases.
Abstract
We analyze the origin and properties of the chaotic dynamics of two atomic ensembles in a driven-dissipative experimental setup, where they are collectively damped by a bad cavity mode and incoherently pumped by a Raman laser. Starting from the mean-field equations, we explain the emergence of chaos by way of quasiperiodicity -- presence of two or more incommensurate frequencies. This is known as the Ruelle-Takens-Newhouse route to chaos. The equations of motion have a -symmetry with respect to the interchange of the two ensembles. However, some of the attractors of these equations spontaneously break this symmetry. To understand the emergence and subsequent properties of various attractors, we concurrently study the mean-field trajectories, Poincar\'{e} sections, maximum and conditional Lyapunov exponents, and power spectra. Using Floquet analysis, we show that…
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