Controllable generation of photons and phonons in a coupled BEC-optomechanical-cavity via the parametric dynamical Casimir effect
arXiv:1711.07072 · doi:10.1016/j.aop.2018.07.013
Abstract
We theoretically propose and investigate a feasible experimental scheme for the realization of the dynamical Casimir effect (DCE) in a hybrid optomechanical cavity with a moving end mirror containing an interacting cigar-shaped Bose-Einstein condensate (BEC). We show that in the red-detuned regime of cavity optomechanics together with the weak optomechanical coupling limit by \textit{coherent} modulation of the \textit{s}-wave scattering frequency of the BEC and the mechanical spring coefficient of the mechanical oscillator (MO), the mechanical and atomic quantum vacuum fluctuations are parametrically amplified, which consequently lead to the generation of the mechanical/Bogoliubov-type Casimir phonons. Interestingly, in the coherent regime corresponding to the case of largely different optomechanical coupling strengths of the cavity field to the BEC and the MO, or equivalently largely different cooperativities, one can generate a large number of Casimir photons due to the amplification of the intracavity vacuum fluctuations \textit{induced} by the time modulations of the BEC and the MO. The number of generated Casimir particles are externally controllable by the cooperativities, and the modulation amplitudes of the atomic collisions rate and the mechanical spring coefficient.
12 pages, 6 figures
References in corpus (16)
- Sideband Cooling Micromechanical Motion to the Quantum Ground State
- Strong dispersive coupling of a high finesse cavity to a micromechanical membrane
- Cavity Optomechanics
- Cavity-assisted squeezing of a mechanical oscillator
- An acoustic analog to the dynamical Casimir effect in a Bose-Einstein condensate
- The dynamical Casimir effect in superconducting microwave circuits
- A novel experimental approach for the detection of the dynamic Casimir effect
- Simultaneous cooling and entanglement of mechanical modes of a micromirror in an optical cavity
- Synchronization dynamics of two nanomechanical membranes within a Fabry-Perot cavity
- Coherent Cancellation of Backaction Noise in optomechanical Force Measurements
- Synchronization in an Optomechanical Cavity
- Nonlinear effects of atomic collisions on the optomechanical properties of a Bose-Einstein condensate in an optical cavity
- Intrinsic cross-Kerr nonlinearity in an optical cavity containing an interacting Bose-Einstein condensate
- Dispersive interaction of a Bose-Einstein condensate with the movable mirror of an optomechanical cavity in the presence of the laser phase noise
- The effect of atomic collisions on the quantum phase transition of a Bose-Einstein condensate inside an optical cavity
- Optimal amplification of the dynamical Casimir effect in a parametrically driven system
Cited by in corpus (21)
- Force sensing in hybrid Bose-Einstein condensate optomechanics based on parametric amplification
- Enhanced photon blockade in an optomechanical system with parametric amplification
- Cavity electromechanics with parametric mechanical driving
- Single-quadrature quantum magnetometry in cavity electromagnonics
- Conversion of Mechanical Noise into Correlated Photon Pairs: Dynamical Casimir effect from an incoherent mechanical drive
- Ultra-precision quantum sensing and measurement based on nonlinear hybrid optomechanical systems containing ultracold atoms or atomic Bose-Einstein condensate
- Homodyne coherent quantum noise cancellation in a hybrid optomechanical force sensor
- Strong quadrature squeezing and quantum amplification in a coupled Bose-Einstein condensate- optomechanical cavity via coherent modulation
- Improving photon blockade, entanglement and mechanical-cat-state generation in a generalized cross-Kerr optomechanical circuit
- A Green's function approach to the linear response of a driven dissipative optomechanical system
- Enhancement of photon creation through the pseudo-Hermitian dynamical Casimir effect
- Photon generation via dynamical Casimir effect in an optomechanical cavity as a closed quantum system
- Negative cavity photon spectral function in an optomechanical system with two parametrically-driven mechanical modes
- Motion induced by asymmetric excitation of the quantum vacuum
- Back-action evading measurement of the collective mode of a Bose-Einstein condensate
- Noise and dissipation on a moving mirror induced by the dynamical Casimir emission
- Squeezed atom laser for Bose-Einstein condensate with minimal length
- Dynamical Casimir effect enhanced by decreasing the mirror reflectivity
- Foundational Issues in Dynamical Casimir Effect and Analogue Features in Cosmological Particle Creation
- Relativistic bands in the discrete spectrum of created particles in an oscillating cavity
- Quantum Interference in Atomic Systems