Collective atomic recoil laser as a synchronization transition
Abstract
We consider here a model previously introduced to describe the collective behavior of an ensemble of cold atoms interacting with a coherent electromagnetic field. The atomic motion along the self-generated spatially periodic force field can be interpreted as the rotation of a phase oscillator. This suggests a relationship with synchronization transitions occurring in globally coupled rotators. In fact, we show that whenever the field dynamics can be adiabatically eliminated, the model reduces to a self-consistent equation for the probability distribution of the atomic “phases.” In this limit, there exists a formal equivalence with the Kuramoto model, though with important differences in the self-consistency conditions. Depending on the field-cavity detuning, we show that the onset of synchronized behavior may occur through either a first- or second-order phase transition. Furthermore, we find a secondary threshold, above which a periodic self-pulsing regime sets in, that is immediately followed by the unlocking of the forward-field frequency. At yet higher, but still experimentally meaningful, input intensities, irregular, chaotic oscillations may eventually appear. Finally, we derive a simpler model, involving only five scalar variables, which is able to reproduce the entire phenomenology exhibited by the original model.
- Publication:
-
Physical Review E
- Pub Date:
- July 2008
- DOI:
- arXiv:
- arXiv:0712.1773
- Bibcode:
- 2008PhRvE..78a1108J
- Keywords:
-
- 05.90.+m;
- 42.65.Sf;
- 42.50.Wk;
- 05.45.Xt;
- Other topics in statistical physics thermodynamics and nonlinear dynamical systems;
- Dynamics of nonlinear optical systems;
- optical instabilities optical chaos and complexity and optical spatio-temporal dynamics;
- Mechanical effects of light on material media microstructures and particles;
- Synchronization;
- coupled oscillators;
- Physics - Optics;
- Physics - General Physics
- E-Print:
- doi:10.1103/PhysRevE.78.011108