Enhanced electromechanical coupling of a nanomechanical resonator to coupled superconducting cavities
arXiv:1503.02393 · doi:10.1038/srep19065
Abstract
We investigate the electromechanical coupling between a nanomechanical resonator and two parametrically coupled superconducting coplanar waveguide cavities that are driven by a two-mode squeezed microwave source. We show that, with the selective coupling of the resonator to the cavity Bogoliubov modes, the radiation-pressure type coupling can be greatly enhanced by several orders of magnitude, enabling the single photon strong coupling to be reached. This allows the investigation of a number of interesting phenomena such as photon blockade effects and the generation of nonclassical quantum states with electromechanical systems.
5 pages,3 figures
References in corpus (17)
- Sideband Cooling Micromechanical Motion to the Quantum Ground State
- Optomechanically induced transparency
- Electromagnetically Induced Transparency and Slow Light with Optomechanics
- Circuit cavity electromechanics in the strong coupling regime
- Single-photon Optomechanics
- State Transfer Between a Mechanical Oscillator and Microwave Fields in the Quantum Regime
- Squeezed Optomechanics with Phase-matched Amplification and Dissipation
- Quantum Optomechanical Heat Engine
- Multimode circuit optomechanics near the quantum limit
- Josephson junction-embedded transmission-line resonators: from Kerr medium to in-line transmon
- Control of microwave signals using circuit nano-electromechanics
- Dynamical Casimir effect entangles artificial atoms
- Superconducting quantum node for entanglement and storage of microwave radiation
- Non-degenerate, three-wave mixing with the Josephson ring modulator
- Quantum-information transfer in a coupled resonator waveguide
- Proposal for a near-field optomechanical system with enhanced linear and quadratic coupling
- Strong Single-Photon Coupling in Superconducting Quantum Magnetomechanics
Cited by in corpus (10)
- Enhancing spin-phonon and spin-spin interactions using linear resources in a hybrid quantum system
- Quantum amplification and simulation of strong and ultrastrong coupling of light and matter
- Generalized Ultrastrong Optomechanics
- Phase-Controlled Phonon Laser
- Strong single-photon optomechanical coupling in a hybrid quantum system
- Enhanced spin-mechanical interaction with levitated micromagnets
- All-optical quantum simulation of ultrastrong optomechanics
- Optical normal-mode-induced phonon-sideband splitting in photon-blockade effect
- Quantum Simulation of Tunable and Ultrastrong Mixed-Optomechanics
- Power of photonic states: from quantum computation to cosmology