Laser cooling and optical detection of excitations in a LC electrical circuit
arXiv:1108.2035 · doi:10.1103/PhysRevLett.107.273601
Abstract
We explore a method for laser cooling and optical detection of excitations in a LC electrical circuit. Our approach uses a nanomechanical oscillator as a transducer between optical and electronic excitations. An experimentally feasible system with the oscillator capacitively coupled to the LC and at the same time interacting with light via an optomechanical force is shown to provide strong electro-mechanical coupling. Conditions for improved sensitivity and quantum limited readout of electrical signals with such an "optical loud speaker" are outlined.
5 pages, 2 figures
References in corpus (8)
- Strong dispersive coupling of a high finesse cavity to a micromechanical membrane
- Circuit cavity electromechanics in the strong coupling regime
- Opto-mechanical transducers for long-distance quantum communication
- Dispersive optomechanics: a membrane inside a cavity
- Proposal for an Optomechanical Traveling Wave Phonon-Photon Translator
- Quantum Optomechanics - throwing a glance
- Cavity quantum electro-optics
- Qantum theory of optomechanical cooling
Cited by in corpus (49)
- Cavity Optomechanics
- Hybrid quantum circuits: Superconducting circuits interacting with other quantum systems
- Quantum technologies with hybrid systems
- Optical detection of radio waves through a nanomechanical transducer
- Ultrafast and Fault-Tolerant Quantum Communication across Long Distances
- Reversible optical to microwave quantum interface
- Nano-Opto-Electro-Mechanical Systems
- Dynamic dissipative cooling of a mechanical oscillator in strong-coupling optomechanics
- Single-photon nonlinearities in two-mode optomechanics
- Control of Material Damping in High-Q Membrane Microresonators
- Thermodynamics of quantum systems under dynamical control
- An atomic interface between microwave and optical photons
- Heralded Generation and Detection of Entangled Microwave--Optical Photon Pairs
- Hybrid Mechanical Systems
- Microwave-to-optical transduction using a mechanical supermode for coupling piezoelectric and optomechanical resonators
- Microwave-to-optical frequency conversion using a cesium atom coupled to a superconducting resonator
- Cavity-Enhanced Long-Distance Coupling of an Atomic Ensemble to a Micromechanical Membrane
- Cavity optomechanics with Si3N4 membranes at cryogenic temperatures
- Quantum network of superconducting qubits through opto-mechanical interface
- Figures of merit for quantum transducers
- Sensitivity-bandwidth limit in a multi-mode opto-electro-mechanical transducer
- Microwave--Optical entanglement in a Strongly Coupled Electro-Optomechanical System
- Energy localization enhanced ground-state cooling of mechanical resonator from room temperature in optomechanics using a gain cavity
- Graphene on silicon nitride for optoelectromechanical micromembrane resonators
- Interfacing superconducting qubits and single optical photons using molecules in waveguides
- Spatially Adiabatic Frequency Conversion in Optoelectromechanical Arrays
- Measurement-Induced Long-Distance Entanglement of Superconducting Qubits using Optomechanical Transducers
- Electro-mechano-optical detection of nuclear magnetic resonance
- Laser-induced cooling of broadband heat reservoirs
- Entangling two distant non-interacting microwave modes
- Sympathetic cooling of a radio-frequency LC circuit to its ground state in an optoelectromechanical system
- Robust continuous-variable entanglement of microwave photons with cavity electromechanics
- Adiabatic Elimination of Gaussian Subsystems from Quantum Dynamics under Continuous Measurement
- Nonreciprocal conversion between radio-frequency and optical photons with an optoelectromechanical system
- Electro-optomechanical equivalent circuits for quantum transduction
- Stationary quantum entanglement between a massive mechanical membrane and a low frequency LC circuit
- Classical and quantum-linearized descriptions of degenerate optomechanical parametric oscillators
- Quantum optomechanics with a high-frequency dilational mode in thin dielectric membranes
- Interactive optomechanical coupling with nonlinear polaritonic systems
- Impact of transduction scaling laws on nanoelectromechanical systems
- Exciton-mediated photothermal cooling in GaAs membranes
- High-speed quantum transducer with a single-photon emitter in a 2D resonator
- Fröhlich Condensate of Phonons in Optomechanical Systems
- Quantum entanglement in a four-partite hybrid system containing three macroscopic subsystems
- Optomechanical cooling by STIRAP-assisted energy transfer an alternative route towards the mechanical ground state
- Mechanical characterization of a membrane with an on-chip loss shield in a cryogenic environment
- Reversible optical-microwave quantum conversion assisted by optomechanical dynamically-dark modes
- Weak Radio Frequency Signal Detection Based on Piezo-Opto-Electro-Mechanical System: Architecture Design and Sensitivity Prediction
- Open Quantum Systems at Low Temperature