Quantum-Limited Amplification via Reservoir Engineering
arXiv:1311.0273 · doi:10.1103/PhysRevLett.112.133904
Abstract
We describe a new kind of phase-preserving quantum amplifier which utilizes dissipative interactions in a parametrically-coupled three-mode bosonic system. The use of dissipative interactions provides a fundamental advantage over standard cavity-based parametric amplifiers: large photon number gains are possible with quantum-limited added noise, with no limitation on the gain-bandwidth product. We show that the scheme is simple enough to be implemented both in optomechanical systems and in superconducting microwave circuits.
5 pages plus supplementary information
References in corpus (15)
- 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
- Circuit cavity electromechanics in the strong coupling regime
- Amplification and squeezing of quantum noise with a tunable Josephson metamaterial
- Nanomechanical motion measured with precision beyond the standard quantum limit
- Quantum feedback control of a superconducting qubit: Persistent Rabi oscillations
- Coherent optical wavelength conversion via cavity-optomechanics
- Observation of quantum jumps in a superconducting artificial atom
- Coherent quantum LQG control
- Quantum back-action of variable-strength measurement
- Coherent-feedback quantum control with a dynamic compensator
- Non-degenerate, three-wave mixing with the Josephson ring modulator
- Tunable coupling engineering between superconducting resonators: from sidebands to effective gauge fields
- Signal-to-pump back-action and self-oscillation in Double-Pump Josephson Parametric Amplifier
Cited by in corpus (79)
- Nonreciprocal Photon Transmission and Amplification via Reservoir Engineering
- Non-Hermitian Quantum Sensing: Fundamental Limits and Non-Reciprocal Approaches
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- Quantum nondemolition measurement of a nonclassical state of a massive object
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- Broadband parametric amplification with impedance engineering: Beyond the gain-bandwidth product
- Introduction to Quantum-limited Parametric Amplification of Quantum Signals with Josephson Circuits
- Optimizing the nonlinearity and dissipation of a SNAIL Parametric Amplifier for dynamic range
- Abnormal anti-crossing effect in photon-magnon coupling
- Optical circulation in a multimode optomechanical resonator
- Nonreciprocal Quantum Batteries
- Graph-based analysis of nonreciprocity in coupled-mode systems
- Bipartite and tripartite output entanglement in 3-mode optomechanical systems
- A dissipative quantum reservoir for microwave light using a mechanical oscillator
- Phase-dependent optical response properties in an optomechanical system by coherently driving the mechanical resonator
- Observation of Strong Radiation Pressure Forces from Squeezed Light on a Mechanical Oscillator
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- Realizing a Circuit Analog of an Optomechanical System with Longitudinally Coupled Superconducting Resonators
- Cavity electromechanics with parametric mechanical driving
- Linear response theory of open systems with exceptional points
- Exceptional points-based optical amplifiers
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- Minimal models for nonreciprocal amplification using biharmonic drives
- Photon-Pressure Strong-Coupling between two Superconducting Circuits
- Quantum-limited Parametric Amplification with Josephson Circuits in the Regime of Pump Depletion
- Quadrature nonreciprocity: unidirectional bosonic transmission without breaking time-reversal symmetry
- Optomechanically induced amplification and perfect transparency in double-cavity optomechanics
- Multiparametric Amplification and Qubit Measurement with a Kerr-free Josephson Ring Modulator
- Asymmetric frequency conversion in nonlinear systems driven by a biharmonic pump
- Optimal unidirectional amplification induced by optical gain in optomechanical systems
- Strong quadrature squeezing and quantum amplification in a coupled Bose-Einstein condensate- optomechanical cavity via coherent modulation
- Adiabatic Decoherence-Free Subspaces and its Shortcuts
- Optimizing Josephson-Ring-Modulator-based Josephson Parametric Amplifiers via full Hamiltonian control
- Amplifying Frequency Up-Converted Infrared Signals with a Molecular Optomechanical Cavity
- Super-Optimal Charging of Quantum Batteries via Reservoir Engineering
- Strong squeezing via phonon mediated spontaneous generation of photon pairs
- Quantum feedback amplification
- Quantum Optical Binding of Nanoscale Particles
- Non-conservative Forces via Quantum Reservoir Engineering
- Rotation sensing in two coupled whispering-gallery-mode resonators with loss and gain
- Cooling photon-pressure circuits into the quantum regime
- Steady state oscillations of circular currents in concentric polariton condensates
- Dissipative Pairing Interactions: Quantum Instabilities, Topological Light, and Volume-Law Entanglement
- Nonreciprocal Amplification Transition in a Driven-Dissipative Quantum Network
- On Nonlinear Amplification: Improved Quantum Limits for Photon Counting
- Achieving the fundamental quantum limit of linear waveform estimation
- Low-power phonon lasing through position-modulated Kerr-type nonlinearity
- Monitoring Microtubule Mechanical Vibrations via Optomechanical Coupling
- Nondegenerate internal squeezing: an all-optical, loss-resistant quantum technique for gravitational-wave detection
- Quantum limits on the time-bandwidth product of an optical resonator
- Engineering of Quantum State by Time-Dependent Decoherence-Free Subspaces
- Theory of noiseless phase-mixing amplification in a cavity optomechanical system
- Charge dynamics in quantum-circuit refrigeration: thermalization and microwave gain
- Emerging unitary evolutions in dissipatively coupled systems
- How to Project onto an Arbitrary Single-Photon Wavepacket
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- Surpassing spectator qubits with photonic modes and continuous measurement for Heisenberg-limited noise mitigation
- Mechanically-mediated optical response in hybrid opto-electromechanical systems
- Parametric Couplings in Engineered Quantum Systems
- How to describe collective decay of uncoupled modes in the input-output formalism
- Unveiling photon-photon coupling induced transparency and absorption
- Flux-modulated tunable interaction regimes in two strongly nonlinear oscillators
- Approaching quantum-limited amplification with large gain catalyzed by hybrid nonlinear media in cavity optomechanics
- Coherent dynamical control of quantum processes
- A Systems Theory Approach to the Synthesis of Minimum Noise Phase-Insensitive Quantum Amplifiers
- Sympathetic Cooling of Levitated Optomechanics through Nonreciprocal Coupling