Selective optomechanically-induced amplification with driven oscillators
arXiv:1901.01886 · doi:10.1103/PhysRevA.100.013813
Abstract
We study optomechanically-induced transparency (OMIT) in a compound system consisting of an optical cavity and an acoustic molecule, which features not only double OMIT peaks but also light advance. We find that by selectively driving one of the acoustic modes, OMIT peaks can be amplified either symmetrically or asymmetrically, accompanied by either significantly enhanced advance or a transition from advance to delay of the signal light. The sensitive impacts of the mechanical driving fields on the optical properties, including the signal transition and its high-order sidebands, are also revealed. Our results confirm that selective acoustic control of OMIT devices provides a versatile route to achieve multi-band optical modulations, weak-signal sensing, and coherent communications of light.
accepted by Phys. Rev. A
References in corpus (24)
- Optomechanically induced transparency
- Electromagnetically Induced Transparency and Slow Light with Optomechanics
- Optomechanical entanglement between a movable mirror and a cavity field
- Circuit cavity electromechanics in the strong coupling regime
- PT-Symmetric Phonon Laser
- Single-photon Optomechanics
- Coherent optical wavelength conversion via cavity-optomechanics
- Optomechanically-Induced Transparency in partiy-time-symmetric microresonators
- Tunable double optomechanically induced transparency in an optomechanical system
- Precision measurement of charge number with optomechanically induced transparency
- Multimode circuit optomechanics near the quantum limit
- Electromagnetially-induced-transparency-like ground-state cooling in a double-cavity optomechanical system
- Cascaded optical transparency in multimode-cavity optomechanical systems
- Ion trap transducers for quantum electromechanical oscillators
- Precision measurement of the environmental temperature by tunable double optomechanically induced transparency with a squeezed field
- Antibunching photons in a cavity coupled to an optomechanical system
- Highly sensitive optical sensor for precision measurement of electrical charges based on optomechanically induced difference-sideband generation
- Optomechanical second-order sidebands and group delays in a Kerr resonator
- Superradiance and collective gain in multimode optomechanics
- Collective Radiance Effects in the Ultrastrong Coupling Regime
- Optomechanically-induced-transparency cooling of massive mechanical resonators to the quantum ground state
- Phononic Josephson oscillation and self-trapping with two-phonon exchange interaction
- Honeycomb Phononic Networks with Closed Mechanical Subsystems
- Synthetic gauge fields for phonon transport in a nano-optomechanical system