EPR paradox and quantum steering in a three-mode optomechanical system
arXiv:1403.1690 · doi:10.1103/PhysRevA.89.022332
Abstract
We study multi-partite entanglement, the generation of EPR states and quantum steering in a three-mode optomechanical system composed of an atomic ensemble located inside a single-mode cavity with a movable mirror. The cavity mode is driven by a short laser pulse, has a nonlinear parametric-type interaction with the mirror and a linear beamsplitter-type interaction with the atomic ensemble. There is no direct interaction of the mirror with the atomic ensemble. A threshold effect for the dynamics of the system is found, above which the system works as an amplifier and below which as an attenuator of the output fields. The threshold is determined by the ratio of the coupling strengths of the cavity mode to the mirror and to the atomic ensemble. It is shown that above the threshold the system effectively behaves as a two-mode system in which a perfect bipartite EPR state can be generated, while it is impossible below the threshold. Furthermore, a fully inseparable tripartite entanglement and even further a genuine tripartite entanglement can be produced above and below the threshold. In addition, we consider quantum steering and examine the monogamy relations that quantify the amount of bipartite steering that can be shared between different modes. It is found that the mirror is more capable for steering of entanglement than the cavity mode. The two way steering is found between the mirror and the atomic ensemble despite the fact that they are not directly coupled to each other, while it is impossible between the output of cavity mode and the ensemble which are directly coupled to each other.
17 pages, 10 figures
References in corpus (18)
- Steering, Entanglement, Nonlocality, and the EPR Paradox
- Optomechanical entanglement between a movable mirror and a cavity field
- Observation of strong coupling between a micromechanical resonator and an optical cavity field
- Experimental criteria for steering and the Einstein-Podolsky-Rosen paradox
- Nanomechanical motion measured with precision beyond the standard quantum limit
- Observation of one-way Einstein-Podolsky-Rosen steering
- Robust entanglement of a micromechanical resonator with output optical fields
- Creating and probing macroscoping entanglement with light
- Steady state entanglement in the mechanical vibrations of two dielectric membranes
- Emergence of atom-light-mirror entanglement inside an optical cavity
- Quantum Optomechanics - throwing a glance
- Cavity optomechanical coupling assisted by an atomic gas
- Entangling a nanomechanical resonator and a superconducting microwave cavity
- Entanglement detection in hybrid optomechanical systems
- Macroscopic thermal entanglement due to radiation pressure
- Entanglement of a Laguerre-Gaussian cavity mode with a rotating mirror
- Cold-Atom-Induced Control of an Optomechanical Device
- Tripartite entanglement and threshold properties of coupled intracavity downconversion and sum-frequency generation
Cited by in corpus (9)
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- Phase control of entanglement and quantum steering in a three-mode optomechanical system
- Manipulation and enhancement of asymmetric steering via interference effects induced by closed-loop coupling
- Quantum steering of multimode Gaussian states by Gaussian measurements: monogamy relations and the Peres conjecture
- Role of thermal noise in tripartite quantum steering
- Enhanced entanglement of two optical modes in optomechanical systems via an optical parametric amplifier
- Preparation of entangled states of microwave photons in a hybrid system via electro-optic effect
- Demonstration of monogamy laws for Gaussian steering in optomechanics