Dissipation-driven two-mode mechanical squeezed states in optomechanical systems
Abstract
In this paper, we propose two quantum optomechanical arrangements that permit the dissipation-enabled generation of steady two-mode mechanical squeezed states. In the first setup, the mechanical oscillators are placed in a two-mode optical resonator while in the second setup the mechanical oscillators are located in two coupled single-mode cavities. We show analytically that for an appropriate choice of the pump parameters, the two mechanical oscillators can be driven by cavity dissipation into a stationary two-mode squeezed vacuum, provided that mechanical damping is negligible. The effect of thermal fluctuations is also investigated in detail and shows that ground-state precooling of the oscillators is not necessary for the two-mode squeezing. These proposals can be realized in a number of optomechanical systems with current state-of-the-art experimental techniques.
- Publication:
-
Physical Review A
- Pub Date:
- March 2013
- DOI:
- arXiv:
- arXiv:1301.5698
- Bibcode:
- 2013PhRvA..87c3829T
- Keywords:
-
- 42.50.Dv;
- 03.65.Ud;
- 42.50.Wk;
- 07.10.Cm;
- Nonclassical states of the electromagnetic field including entangled photon states;
- quantum state engineering and measurements;
- Entanglement and quantum nonlocality;
- Mechanical effects of light on material media microstructures and particles;
- Micromechanical devices and systems;
- Quantum Physics
- E-Print:
- 7 pages, 2 figures