Optomechanical analog of two-color electromagnetically-induced transparency: Photon transmission through an optomechanical device with a two-level system
arXiv:1402.2764 · doi:10.1103/PhysRevA.90.023817
Abstract
Some optomechanical systems can be transparent to a probe field when a strong driving field is applied. These systems can provide an optomechanical analogue of electromagnetically-induced transparency (EIT). We study the transmission of a probe field through a hybrid optomechanical system consisting of a cavity and a mechanical resonator with a two-level system (qubit). The qubit might be an intrinsic defect inside the mechanical resonator, a superconducting artificial atom, or another two-level system. The mechanical resonator is coupled to the cavity field via radiation pressure and to the qubit via the Jaynes-Cummings interaction. We find that the dressed two-level system and mechanical phonon can form two sets of three-level systems. Thus, there are two transparency windows in the discussed system. We interpret this effect as an optomechanical analog of two-color EIT (or double-EIT). We demonstrate how to switch between one and two EIT windows by changing the transition frequency of the qubit. We show that the absorption and dispersion of the system are mainly affected by the qubit-phonon coupling strength and the transition frequency of the qubit.
10 pages, 9 figures
References in corpus (27)
- Sideband Cooling Micromechanical Motion to the Quantum Ground State
- Optomechanically induced transparency
- Electromagnetically Induced Transparency and Slow Light with Optomechanics
- Superconducting Circuits and Quantum Information
- Circuit cavity electromechanics in the strong coupling regime
- Single-photon Optomechanics
- Coherent optical wavelength conversion via cavity-optomechanics
- Photon blockade in quadratically coupled optomechanical systems
- Phonon-induced spin-spin interactions in diamond nanostructures: application to spin squeezing
- Quantum Optomechanics - throwing a glance
- Cavity Nonlinear Optics at Low Photon Numbers from Collective Atomic Motion
- Cavity optomechanical coupling assisted by an atomic gas
- Optical wavelength conversion of quantum states with optomechanics
- Photon-induced tunneling in optomechanical systems
- Electromagnetically induced transparency and Autler-Townes splitting in superconducting flux quantum circuits
- Two-Mode Squeezed States and Entangled States of Two Mechanical Resonators
- Detecting phonon blockade with photons
- Full photon statistics of a light beam transmitted through an optomechanical system
- Quantum Friction in Nanomechanical Oscillators at Millikelvin Temperatures
- Quantum Theory of Transmission Line Resonator-Assisted Cooling of a Micromechanical Resonator
- Quantum Optomechanics beyond Linearization
- Cavity cooling of a mechanical resonator in the presence of two-level-system defects
- Control of photon propagation via electromagnetically induced transparency in lossless media
- Ground state cooling of nanomechanical resonator via parametric linear coupling
- Single-photon transport in a one dimentional waveguide coupling to a hybrid atom-optomechanical system
- Light scattering in an optomechanical cavity coupled to a single atom
- Quantum optomechanics with a mixture of ultracold atoms
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