Phase-Controlled Phonon Laser
arXiv:1706.02097 · doi:10.1088/1367-2630/aadc9f
Abstract
A phase-controlled ultralow-threshold phonon laser is proposed by using tunable optical amplifiers in coupled-cavity-optomechanical system. Giant enhancement of coherent photon-phonon interactions is achieved by engineering the strengths and phases of external parametric driving. This in turn enables single-photon optomechanics and low-power phonon lasing, opening up novel prospects for applications, e.g. quantum phononics and ultrasensitive motion detection.
10 pages, 5 figures
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Cited by in corpus (8)
- Nonreciprocal photon blockade via quadratic optomechanical coupling
- Enhancement of optomechanically induced sum sideband using parametric interactions
- Single-photon-triggered spin squeezing with decoherence reduction in optomechanics via phase matching
- Hybrid coupling optomechanically assisted nonreciprocal photon blockade
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- Scalable phonon-laser arrays with self-organized synchronization
- Molecular-optomechanical phonon laser