Phase-dependent optical response properties in an optomechanical system by coherently driving the mechanical resonator
arXiv:1408.5203 · doi:10.1103/PhysRevA.91.043843
Abstract
We explore theoretically the optical response properties in an optomechanical system under electromagneti- cally induced transparency condition but with the mechanical resonator being driven by an additional coherent field. In this configuration, more complex quantum coherent and interference phenomena occur. In partic- ular, we find that the probe transmission spectra depend on the total phase of the applied fields. Our study also provides an efficient way to control propagation of amplification.
8 pages, 5 figures
References in corpus (11)
- Optomechanically induced transparency
- Electromagnetically Induced Transparency and Slow Light with Optomechanics
- Circuit cavity electromechanics in the strong coupling regime
- Slowing and stopping light using an optomechanical crystal array
- Control of microwave signals using circuit nano-electromechanics
- Electromagnetically induced transparency controlled by a microwave field
- Generalized Stern-Gerlach Effect for Chiral Molecules
- Quantum-Limited Amplification via Reservoir Engineering
- Electromagnetically-induced transparency with amplification in superconducting circuits
- Quantum-limited amplification and parametric instability in the reversed dissipation regime of cavity optomechanics
- Electromechanically induced absorption in a circuit nano-electromechanical system
Cited by in corpus (20)
- Optomechanical second-order sidebands and group delays in a Kerr resonator
- Optical unidirectional amplification in a three-mode optomechanical system
- Controllable optical output fields from an optomechanical system with a mechanical driving
- Optomechanically induced transparency and gain
- Selective optomechanically-induced amplification with driven oscillators
- Phase-controlled pathway interferences and switchable fast-slow light in a cavity-magnon polariton system
- Spatial Non-Locality Induced Non-Markovian EIT in a Single Giant Atom
- Optomechanical transistor with mechanical gain
- Phase controlled single-photon nonreciprocal transmission in a one-dimensional waveguide
- Force-induced transparency and conversion between slow and fast lights in optomechanics
- Microwave-controlled optical double optomechanically induced transparency in a hybrid piezo-optomechanical cavity system
- Enhanced output entanglement with reservoir engineering
- Coherent Control of Fano Resonances in a Macroscopic Four-Mirror Cavity
- Optomechanical second-order sidebands and group delays in a spinning resonator with parametric amplifier and non-Markovian effects
- Phase-dependent double optomechanically induced transparency in a hybrid optomechanical cavity system with coherently mechanical driving
- Partially dark optical molecule via phase control
- Surface-acoustic-wave-controlled optomechanically induced transparency in a hybrid piezo-optomechanical planar distributed Bragg-reflector-cavity system
- Phase-dependent controllable field generation in a ring cavity resonator
- Phase sensitive photonic flash
- Optomechanical non-reciprocity and its equivalence to antiresonance: Control of isolation frequency using mechanical drive