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Cavity quantum optomechanical nonlinearities and position measurement beyond the breakdown of the linearized approximation

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Title: Cavity quantum optomechanical nonlinearities and position measurement beyond the breakdown of the linearized approximation
Authors: Clarke, J
Neveu, P
Khosla, KE
Verhagen, E
Vanner, MR
Item Type: Journal Article
Abstract: Several optomechanics experiments are now entering the highly sought nonlinear regime where optomechanical interactions are large even for low light levels. Within this regime, new quantum phenomena and improved performance may be achieved; however, a corresponding theoretical formalism of cavity quantum optomechanics that captures the nonlinearities of both the radiation-pressure interaction and the cavity response is needed to unlock these capabilities. Here, we develop such a nonlinear cavity quantum optomechanical framework, which we then utilize to propose how position measurement can be performed beyond the breakdown of the linearized approximation. Our proposal utilizes optical general-dyne detection, ranging from single to dual homodyne, to obtain mechanical position information imprinted onto both the optical amplitude and phase quadratures and enables both pulsed and continuous modes of operation. These cavity optomechanical nonlinearities are now being confronted in a growing number of experiments, and our framework will allow a range of advances to be made in, e.g., quantum metrology, explorations of the standard quantum limit, and quantum measurement and control.
Issue Date: 4-Aug-2023
Date of Acceptance: 28-Jun-2023
URI: http://hdl.handle.net/10044/1/113091
DOI: 10.1103/PhysRevLett.131.053601
ISSN: 0031-9007
Publisher: American Physical Society
Journal / Book Title: Physical Review Letters
Volume: 131
Issue: 5
Copyright Statement: Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article’s title, journal citation, and DOI.
Publication Status: Published
Article Number: 053601
Online Publication Date: 2023-08-03
Appears in Collections:Quantum Optics and Laser Science
Physics



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