Circuit analog of quadratic optomechanics
arXiv:1412.6869 · doi:10.1103/PhysRevA.91.033835
Abstract
We propose a superconducting electrical circuit that simulates a quadratic optomechanical system. A capacitor placed between two transmission-line (TL) resonators acts like a semi-transparent membrane, and a superconducting quantum interference device (SQUID) that terminates a TL resonator behaves like a movable mirror. Combining these circuit elements, it is possible to simulate a quadratic optomechanical coupling whose coupling strength is determined by the coupling capacitance and the tunable bias flux through the SQUIDs. Estimates using realistic parameters suggest that an improvement in the coupling strength could be realized, to five orders of magnitude from what has been observed in membrane-in-the-middle cavity optomechanical systems. This leads to the possibility of achieving the strong-coupling regime of quadratic optomechanics.
18 pages, 14 figures
References in corpus (19)
- Sideband Cooling Micromechanical Motion to the Quantum Ground State
- Strong dispersive coupling of a high finesse cavity to a micromechanical membrane
- Observation of strong coupling between a micromechanical resonator and an optical cavity field
- Superconducting Circuits and Quantum Information
- Circuit cavity electromechanics in the strong coupling regime
- Amplification and squeezing of quantum noise with a tunable Josephson metamaterial
- Cavity Opto-Mechanics with a Bose-Einstein Condensate
- Dispersive optomechanics: a membrane inside a cavity
- Coplanar Waveguide Resonators for Circuit Quantum Electrodynamics
- Cooling and squeezing via quadratic optomechanical coupling
- Ultrastrong coupling regime of cavity QED with phase-biased flux qubits
- The dynamical Casimir effect in superconducting microwave circuits
- Optomechanical trapping and cooling of partially transparent mirrors
- Josephson junction-embedded transmission-line resonators: from Kerr medium to in-line transmon
- Tunable resonators for quantum circuits
- Selective coupling of superconducting qubits via tunable stripline cavity
- Analogue Hawking Radiation in a dc-SQUID Array Transmission Line
- Standard Quantum Limit for Probing Mechanical Energy Quantization
- Optomechanical-like coupling between superconducting resonators
Cited by in corpus (18)
- Quantum amplification and simulation of strong and ultrastrong coupling of light and matter
- Enhancement of mechanical effects of single photons in modulated two-mode optomechanics
- Circuit electromechanics with single photon strong coupling
- Quantum field heat engine powered by phonon-photon interactions
- Single-photon-triggered spin squeezing with decoherence reduction in optomechanics via phase matching
- Photon-assisted entanglement and squeezing generation and decoherence suppression via a quadratic optomechanical coupling
- Parametrically enhanced interactions and non-trivial bath dynamics in a photon-pressure Kerr amplifier
- Quantum Magnetometer with Dual-Coupling Optomechanics
- All-optical quantum simulation of ultrastrong optomechanics
- Suppressing laser phase noise in an optomechanical system
- Effects of Quadratic Optomechanical Coupling on Bipartite Entanglements, Mechanical Ground-State Cooling and Squeezing in an Electro-Optomechanical System
- Quantum Simulation of Tunable and Ultrastrong Mixed-Optomechanics
- Bilateral photon emission from a vibrating mirror and multiphoton entanglement generation
- Transmission-based noise spectroscopy for quadratic qubit-resonator interactions
- Highly sensitive temperature sensing via quadratic optomechanical coupling
- Temporal evolution of a forced optomechanical system with linear and quadratic field -- mechanical oscillator couplings
- Dynamics and Spectral Response of linear-quadratic optomechanical interaction: Effects of pure dephasing
- Quantum Correlations in Jahn-Teller Molecular Systems Simulated with Superconducting Circuits