Tunable coupling to a mechanical oscillator circuit using a coherent feedback network
arXiv:1211.1950 · doi:10.1103/PhysRevX.3.021013
Abstract
We demonstrate a fully cryogenic microwave feedback network composed of modular superconducting devices connected by transmission lines and designed to control a mechanical oscillator coupled to one of the devices. The network features an electromechanical device and a tunable controller that coherently receives, processes and feeds back continuous microwave signals that modify the dynamics and readout of the mechanical state. While previous electromechanical systems represent some compromise between efficient control and efficient readout of the mechanical state, as set by the electromagnetic decay rate, the tunable controller produces a closed-loop network that can be dynamically and continuously tuned between both extremes much faster than the mechanical response time. We demonstrate that the microwave decay rate may be modulated by at least a factor of 10 at a rate greater than times the mechanical response rate. The system is easy to build and suggests that some useful functions may arise most naturally at the network-level of modular, quantum electromagnetic devices.
11 pages, 6 figures, final published version
References in corpus (19)
- Sideband Cooling Micromechanical Motion to the Quantum Ground State
- Quantum Theory of Cavity-Assisted Sideband Cooling of Mechanical Motion
- Theory of ground state cooling of a mechanical oscillator using dynamical back-action
- Radiation-pressure cooling and optomechanical instability of a micro-mirror
- Self-cooling of a micro-mirror by radiation pressure
- Amplification and squeezing of quantum noise with a tunable Josephson metamaterial
- Nanomechanical motion measured with precision beyond the standard quantum limit
- State Transfer Between a Mechanical Oscillator and Microwave Fields in the Quantum Regime
- Observation of Radiation Pressure Shot Noise on a Macroscopic Object
- Coherent quantum LQG control
- Fast Reset and Suppressing Spontaneous Emission of a Superconducting Qubit
- Multimode circuit optomechanics near the quantum limit
- Coherent-feedback quantum control with a dynamic compensator
- Dynamical Backaction of Microwave Fields on a Nanomechanical Oscillator
- Controlled catch and release of microwave photon states
- Quantum Feedback Networks: Hamiltonian Formulation
- Advantages of Coherent Feedback for Cooling Quantum Oscillators
- Passive Cooling of a Micromechanical Oscillator with a Resonant Electric Circuit
- A superconducting microwave multivibrator produced by coherent feedback
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- Cavity optomechanics assisted by optical coherent feedback
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- Comparing resolved-sideband cooling and measurement-based feedback cooling on an equal footing: analytical results in the regime of ground-state cooling
- Violation of Bell's Inequality in Electromechanics
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