Quantum Optomechanics - throwing a glance
arXiv:1005.5518 · doi:10.1364/JOSAB.27.00A189
Abstract
Mechanical resonators are gradually becoming available as new quantum systems. Quantum optics in combination with optomechanical interactions (quantum optomechanics) provides a particularly helpful toolbox for generating and controlling mechanical quantum states. We highlight some of the current challenges in the field by discussing two of our recent experiments.
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Cited by in corpus (22)
- Electromagnetically Induced Transparency and Slow Light with Optomechanics
- Millikelvin cooling of an optically trapped microsphere in vacuum
- Large Quantum Superpositions and Interference of Massive Nanometer-Sized Objects
- Coherent optical wavelength conversion via cavity-optomechanics
- Optically Levitating Dielectrics in the Quantum Regime: Theory and Protocols
- Enhancing Quantum Effects via Periodic Modulations in Optomechanical Systems
- Qubit-assisted thermometry of a quantum harmonic oscillator
- Quantum State Orthogonalization and a Toolset for Quantum Optomechanical Phonon Control
- Entanglement swapping with local certification: Application to remote micromechanical resonators
- Electromechanically induced absorption in a circuit nano-electromechanical system
- Cavity-Enhanced Long-Distance Coupling of an Atomic Ensemble to a Micromechanical Membrane
- Optomechanical sideband cooling of a thin membrane within a cavity
- Multipartite optomechanical entanglement from competing nonlinearities
- Phonon number measurements using single photon opto-mechanics
- Fundamental quantum limits to waveform detection
- Dynamical scattering models in optomechanics: Going beyond the 'coupled cavities' model
- Inhomogeneous mechanical losses in micro-oscillators with high reflectivity coating
- Cooling the motion of a trapped atom with a cavity field
- Optomechanical coupling between a moving dielectric sphere and radiation fields: a Lagrangian-Hamiltonian formalism
- Exciton-mediated photothermal cooling in GaAs membranes
- Damping of optomechanical disks resonators vibrating in air
- Quantum optomechanics with a mixture of ultracold atoms