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Backaction‐Noise Suppression and System Stabilization in Double‐Mode Optomechanical Systems

Backaction‐Noise Suppression and System Stabilization in Double‐Mode Optomechanical Systems A double‐mode strategy of coherent quantum noise cancellation (CQNC) is developed to mitigate the effect of the backaction‐noise in optomechanical systems. Working under an asymmetrical configuration, the CQNC strategy of quantum interference can promote the system stabilization in addition to enhance its sensitivity in weak‐force metrology by offsetting the backaction‐noise. Through exploiting the coupling between the probe mode and the ancillary mode, the rotating‐wave term and the counter‐rotating term are found to be responsible under certain circumstances for system‐stability and noise‐suppression, respectively. They demonstrate a subtle compromise between the resonant noise cancellation ratio and the effective damping rate. This strategy can be carried out in optomechanical setups with a membrane in the middle or a twisted‐cavity‐based weak‐torque detector. http://www.deepdyve.com/assets/images/DeepDyve-Logo-lg.png Annalen Der Physik Wiley

Backaction‐Noise Suppression and System Stabilization in Double‐Mode Optomechanical Systems

Annalen Der Physik , Volume 533 (7) – Jul 1, 2021

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Publisher
Wiley
Copyright
© 2021 Wiley‐VCH GmbH
ISSN
0003-3804
eISSN
1521-3889
DOI
10.1002/andp.202100119
Publisher site
See Article on Publisher Site

Abstract

A double‐mode strategy of coherent quantum noise cancellation (CQNC) is developed to mitigate the effect of the backaction‐noise in optomechanical systems. Working under an asymmetrical configuration, the CQNC strategy of quantum interference can promote the system stabilization in addition to enhance its sensitivity in weak‐force metrology by offsetting the backaction‐noise. Through exploiting the coupling between the probe mode and the ancillary mode, the rotating‐wave term and the counter‐rotating term are found to be responsible under certain circumstances for system‐stability and noise‐suppression, respectively. They demonstrate a subtle compromise between the resonant noise cancellation ratio and the effective damping rate. This strategy can be carried out in optomechanical setups with a membrane in the middle or a twisted‐cavity‐based weak‐torque detector.

Journal

Annalen Der PhysikWiley

Published: Jul 1, 2021

Keywords: ; ; ;

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