Gespeichert in:
Bibliographische Detailangaben
Hauptverfasser: Ghosh, Sohitri, Feldman, Matthew A., Hong, Seongjin, Marvinney, Claire E., Marino, Alberto M., Pooser, Raphael C., Taylor, Jacob M.
Format: Preprint
Veröffentlicht: 2022
Schlagworte:
Online-Zugang:https://arxiv.org/abs/2211.14460
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
_version_ 1866910933550366720
author Ghosh, Sohitri
Feldman, Matthew A.
Hong, Seongjin
Marvinney, Claire E.
Marino, Alberto M.
Pooser, Raphael C.
Taylor, Jacob M.
author_facet Ghosh, Sohitri
Feldman, Matthew A.
Hong, Seongjin
Marvinney, Claire E.
Marino, Alberto M.
Pooser, Raphael C.
Taylor, Jacob M.
contents Optomechanical sensors are capable of transducing external perturbations to resolvable optical signals. A particular regime of interest is that of high-bandwidth force detection, where an impulse is delivered to the system over a short period of time. Exceedingly sensitive impulse detection has been proposed to observe very weak signals like those due to long range interactions with dark matter that require much higher sensitivities than current sensors can provide. Quantum resources to go beyond the traditional standard quantum limit of these sensors include squeezing of the light used to transduce the signal, backaction evasion by measuring the optimal quadrature, and quantum non-demolition (QND) measurements that reduce backaction directly. These methods have been developed in the context of gravitational wave detection for target frequencies in the audio band range. Here, we provide the theoretical limits to quantum noise reduction for higher and broader frequency targets, such as those from dark matter signals, while combining quantum enhanced readout techniques based on squeezed light and QND measurements with optomechanical sensors. We demonstrate that backaction evasion through QND techniques dramatically reduces the technical challenges presented when using squeezed light for broadband force detection, paving the way for combining multiple quantum noise reduction techniques for enhanced sensitivity in the context of impulse metrology.
format Preprint
id arxiv_https___arxiv_org_abs_2211_14460
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Combining quantum noise reduction resources: a practical approach
Ghosh, Sohitri
Feldman, Matthew A.
Hong, Seongjin
Marvinney, Claire E.
Marino, Alberto M.
Pooser, Raphael C.
Taylor, Jacob M.
Quantum Physics
Optomechanical sensors are capable of transducing external perturbations to resolvable optical signals. A particular regime of interest is that of high-bandwidth force detection, where an impulse is delivered to the system over a short period of time. Exceedingly sensitive impulse detection has been proposed to observe very weak signals like those due to long range interactions with dark matter that require much higher sensitivities than current sensors can provide. Quantum resources to go beyond the traditional standard quantum limit of these sensors include squeezing of the light used to transduce the signal, backaction evasion by measuring the optimal quadrature, and quantum non-demolition (QND) measurements that reduce backaction directly. These methods have been developed in the context of gravitational wave detection for target frequencies in the audio band range. Here, we provide the theoretical limits to quantum noise reduction for higher and broader frequency targets, such as those from dark matter signals, while combining quantum enhanced readout techniques based on squeezed light and QND measurements with optomechanical sensors. We demonstrate that backaction evasion through QND techniques dramatically reduces the technical challenges presented when using squeezed light for broadband force detection, paving the way for combining multiple quantum noise reduction techniques for enhanced sensitivity in the context of impulse metrology.
title Combining quantum noise reduction resources: a practical approach
topic Quantum Physics
url https://arxiv.org/abs/2211.14460