Imaging correlations in heterodyne-detected spectra for quantum sensing
A. Pontin, J.E. Lang, A. Chowdhury, P. Vezio, F. Marino, B. Morana, E., Serra, F. Marin, T.S. Monteiro

TL;DR
This paper introduces a novel filtering technique called r-heterodyning that restores quantum correlations in heterodyne-detected spectra, enhancing sensitivity and information extraction in quantum sensing applications.
Contribution
The authors experimentally demonstrate a filtering method that recovers lost quantum correlations in heterodyne detection, improving measurement sensitivity and enabling detailed quadrature mapping.
Findings
Restores quantum correlations in heterodyne spectra using filter functions.
Allows single-shot measurement of multiple field quadratures.
Creates hybrid spectra with combined homodyne-heterodyne features.
Abstract
The extraordinary sensitivity of the output field of an optical cavity to small quantum-scale displacements has led to breakthroughs such as the first detection of gravitational waves \cite{LIGO,LIGODC} and of the motions of quantum ground-state cooled mechanical oscillators \cite{Teufel2011,Chan2011}. While heterodyne detection of the cavity field preserves asymmetries which provide a key signature that mechanical oscillators has attained the quantum regime, detection of a rotating quadrature of the light averages out important quantum correlations, yielding a weaker signal and lower sensitivity than homodyne detection. In turn, homodyning, detects a single optical quadrature, but loses the important quantum sideband asymmetries. In the present work we present and experimentally demonstrate a technique, involving judicious construction of the autocorrelators of the output current using…
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