Photon production from the vacuum close to the super-radiant transition: When Casimir meets Kibble-Zurek
arXiv:1107.0178 · doi:10.1103/PhysRevLett.108.093603
Abstract
The dynamical Casimir effect (DCE) predicts the generation of photons from the vacuum due to the parametric amplification of the quantum fluctuation of an electromagnetic field\cite{casimir1,casimir2}. The verification of such effect is still elusive in optical systems due to the very demanding requirements of its experimental implementation. This typically requires very fast changes of the boundary conditions of the problem, such as the high-frequency driving of the positions of the mirrors of a cavity accommodating the field. Here, we show that an ensemble of two-level atoms collectively coupled to the electromagnetic field of a cavity (thus embodying the quantum Dicke model\cite{dicke}), driven at low frequencies and close to a quantum phase transition, stimulates the production of photons from the vacuum. This paves the way to an effective simulation of the DCE through a mechanism that has recently found an outstanding experimental demonstration\cite{esslinger}. The spectral properties of the emitted radiation reflect the critical nature of the system and allow us to link the detection of DCE to the Kibble-Zurek mechanism for the production of defects when crossing a continuous phase transition\cite{KZ1,KZ2}. We illustrate the features of our proposal by addressing a simple cavity quantum-electrodynamics (cQED) setting of immediate experimental realisation.
4+1 pages, major changes in the second part of the paper. To appear in Physical Review Letters
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Cited by in corpus (12)
- Universality of Phase Transition Dynamics: Topological Defects from Symmetry Breaking
- Realization of the Dicke model using cavity-assisted Raman transitions
- Quantum control and long-range quantum correlations in dynamical Casimir arrays
- Vacuum-Induced Symmetry Breaking in a Superconducting Quantum Circuit
- Dynamical many-body phases of the parametrically driven, dissipative Dicke model
- Effective Landau-Zener transitions in circuit dynamical Casimir effect with time-varying modulation frequency
- Time-delayed feedback control of the Dicke-Hepp-Lieb superradiant quantum phase transition
- Probing the symmetry breaking of a light--matter system by an ancillary qubit
- Numerical approach to simulating interference phenomena in a two-oscillating mirrors cavity
- Speeding up antidynamical Casimir effect with nonstationary qutrits
- Linear Ultrastrong Optomechanical Interaction
- Asymmetric sequential Landau-Zener dynamics of Bose condensed atoms in a cavity