Ground state cooling and high-fidelity quantum transduction via parametrically-driven bad-cavity optomechanics
arXiv:1904.12984 · doi:10.1103/PhysRevLett.124.103602
Abstract
Optomechanical couplings involve both beam-splitter and two-mode-squeezing types of interactions. While the former underlies the utility of many applications, the latter creates unwanted excitations and is usually detrimental. In this work, we propose a simple but powerful method based on cavity parametric driving to suppress the unwanted excitation that does not require working with a deeply sideband-resolved cavity. Our approach is based on a simple observation: as both the optomechanical two-mode-squeezing interaction and the cavity parametric drive induce squeezing transformations of the relevant photonic bath modes, they can be made to cancel one another. We illustrate how our method can cool a mechanical oscillator below the quantum back-action limit, and significantly suppress the output noise of a sideband-unresolved optomechanical transducer.
Close to accepted version
References in corpus (23)
- 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
- Detection of 15 dB Squeezed States of Light and their Application for the Absolute Calibration of Photoelectric Quantum Efficiency
- Quantum technologies with hybrid systems
- Amplification and squeezing of quantum noise with a tunable Josephson metamaterial
- Observation of squeezed light with 10dB quantum noise reduction
- Squeezed Optomechanics with Phase-matched Amplification and Dissipation
- Proposal for an Optomechanical Traveling Wave Phonon-Photon Translator
- Sideband Cooling Beyond the Quantum Limit with Squeezed Light
- Quantum Noise Interference and Back-action Cooling in Cavity Nanomechanics
- Quantum limited amplification and entanglement in coupled nonlinear resonators
- Path Entanglement of Continuous-Variable Quantum Microwaves
- Cavity quantum electro-optics
- Experimental Proof of Nonlocal Wavefunction Collapse for a Single Particle Using Homodyne Measurement
- Bipartite and tripartite output entanglement in 3-mode optomechanical systems
- Observation of generalized optomechanical coupling and cooling on cavity resonance
- Optoelectromechanical transducer: reversible conversion between microwave and optical photons
- Intracavity-squeezed optomechanical cooling
- Ultrastrong parametric coupling between a superconducting cavity and a mechanical resonator
- Optomechanical cooling with intracavity squeezed light
- High-fidelity bosonic quantum state transfer using imperfect transducers and interference
- Quantum transduction with adaptive control
Cited by in corpus (26)
- Quantum amplification and simulation of strong and ultrastrong coupling of light and matter
- Converting microwave and telecom photons with a silicon photonic nanomechanical interface
- Magnon squeezing enhanced ground-state cooling in cavity magnomechanics
- Microwave-to-optical transduction using a mechanical supermode for coupling piezoelectric and optomechanical resonators
- Coupling spins to nanomechanical resonators: Toward quantum spin-mechanics
- Cavity Optomechanics with Photonic Bound States in the Continuum
- Four-wave-cooling to the single phonon level in Kerr optomechanics
- Controllable generation of mechanical quadrature squeezing via dark-mode engineering in cavity optomechanics
- Large and robust mechanical squeezing of optomechanical systems in a highly unresolved sideband regime via Duffing nonlinearity and intracavity squeezed light
- Quasinormal mode theory of elastic Purcell factors and Fano resonances of optomechanical beams
- Exponentially Improved Dispersive Qubit Readout with Squeezed Light
- Optomechanical cooling with coherent and squeezed light: the thermodynamic cost of opening the heat valve
- Parametrically enhanced interactions and non-trivial bath dynamics in a photon-pressure Kerr amplifier
- Hybrid coupling optomechanically assisted nonreciprocal photon blockade
- Accelerated Magnonic Motional Cooling with Deep Reinforcement Learning
- Generation of strong mechanical squeezing through the joint effect of two-tone driving and parametric pumping
- Nonlinear optomechanical systems with quasi-periodic and chaotic dynamics
- Kerr enhanced optomechanical cooling in the unresolved sideband regime
- Continuous optical-to-mechanical quantum state transfer in the unresolved sideband regime
- Simultaneous cooling of degenerate mechanical modes in unresolved sideband regime via optical and mechanical nonlinearities
- Quantum theory of feedback cooling of an anelastic macro-mechanical oscillator
- Optomechanical cooling with simultaneous intracavity and extracavity squeezed light
- Optomechanical Backaction in the Bistable Regime
- Phase-selective tripartite entanglement and asymmetric Einstein-Podolsky-Rosen steering in squeezed optomechanics
- Parametric Amplification of an Optomechanical Quantum Interconnect
- Beating the 3 dB Limit for Intracavity Squeezing and Its Application to Nondemolition Qubit Readout