Cold-Atom-Induced Control of an Optomechanical Device
arXiv:1003.0424 · doi:10.1103/PhysRevLett.104.243602
Abstract
We consider a cavity with a vibrating end mirror and coupled to a Bose-Einstein condensate. The cavity field mediates the interplay between mirror and collective oscillations of the atomic density. We study the implications of this dynamics and the possibility of an indirect diagnostic. Our predictions can be observed in a realistic setup that is central to the current quest for mesoscopic quantumness.
4 pages, 9 figures. Published version
References in corpus (10)
- Strong dispersive coupling of a high finesse cavity to a micromechanical membrane
- Optomechanical entanglement between a movable mirror and a cavity field
- Observation of strong coupling between a micromechanical resonator and an optical cavity field
- Radiation-pressure cooling and optomechanical instability of a micro-mirror
- Self-cooling of a micro-mirror by radiation pressure
- Squeezing and entanglement in a Bose-Einstein condensate
- Strong atom-field coupling for Bose-Einstein condensates in an optical cavity on a chip
- Cavity Opto-Mechanics with a Bose-Einstein Condensate
- Cavity QED with a Bose-Einstein condensate
- Nanomechanical motion measured with precision beyond the standard quantum limit
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- Selectable linear or quadratic coupling in an optomechanical system
- Engineering entanglement mechanically
- Quantum optomechanics with a mixture of ultracold atoms