cavity optomechanicsdynamical backaction amplification and coolingmechanical resonatorsoptical cavitiesradiation-pressure force
Figures from the paper
Abstract (AI)
The field of cavity optomechanics is reviewed. This field explores the interaction between electromagnetic radiation and nanomechanical or micromechanical motion. This review covers the basics of optical cavities and mechanical resonators, their mutual optomechanical interaction mediated by the radiation-pressure force, the large variety of experimental systems which exhibit this interaction, optical measurements of mechanical motion, dynamical backaction amplification and cooling, nonlinear dynamics, multimode optomechanics, and proposals for future cavity-quantum-optomechanics experiments. In addition, the perspectives for fundamental quantum physics and for possible applications of optomechanical devices are described.
Key Findings
1
Cavity optomechanics studies interactions between electromagnetic radiation and nano- or micromechanical motion mediated by radiation-pressure forces.
2
Experiments demonstrate a large variety of systems exhibiting radiation-pressure optomechanical interactions, including nonlinear dynamics and multimode optomechanics.
3
Optomechanical systems combine optical cavities and mechanical resonators, enabling optical measurement of mechanical motion and dynamical backaction effects (amplification and cooling).
4
The review outlines proposals and perspectives for future cavity-quantum-optomechanics experiments, with implications for fundamental quantum physics and potential optomechanical applications.
Research Object
Cavity optomechanical systems (optical cavities coupled to nanomechanical or micromechanical resonators)
Research Subject
Interaction between electromagnetic radiation and mechanical motion mediated by radiation-pressure forces, including optical readout, dynamical backaction (amplification and cooling), nonlinear and multimode dynamics, and quantum optomechanical effects
Publication Details
Publication Date
2014-12-30
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest
References available in scid.ai2
Cited by12
Integrated photonics on thin-film lithium niobate2021
Optomechanics for quantum technologies2022
Non-Hermitian physics2020
Topological photonics2019
Topological Phases of Non-Hermitian Systems2018
The quantum technologies roadmap: a European community view2018
Elastic Purcell Effect2018
Quantum sensing2017
Quantum information processing with superconducting circuits: a review2017
Ultralow-Noise SiN Trampoline Resonators for Sensing and Optomechanics2016
Topological Phases of Sound and Light2015
Quantum technologies with hybrid systems2015