Microwave Gaussian quantum sensing with a CNOT gate receiver
Hany Khalifa, Kirill Petrovnin, Riku J\"antti, Gheorghe Sorin Paraoanu

TL;DR
This paper introduces a microwave quantum sensing receiver using a CV CNOT gate with homodyne detection, enabling better target detection in noisy environments without ideal photon counters.
Contribution
It proposes a novel microwave QI receiver employing a CV CNOT gate and homodyne measurements, expanding quantum sensing tools beyond optical implementations.
Findings
Outperforms existing QI receivers in certain regimes
Operates effectively with standard homodyne detection
Applicable in microwave and optical domains
Abstract
In quantum illumination (QI) the non-classical correlations between continuous variable (CV) entangled modes of radiation are exploited to detect the presence of a target embedded in thermal noise. The extreme environment where QI outperforms its optimal classical counterpart suggests that applications in the microwave domain would benefit the most from this new sensing paradigm. However all the proposed QI receivers rely on ideal photon counters or detectors, which are not currently feasible in the microwave domain. Here we propose a new QI receiver that utilizes a CV controlled not gate (CNOT) in order to perform a joint measurement on a target return and its retained twin. Unlike other QI receivers, the entire detection process is carried out by homodyne measurements and square-law detectors. The receiver exploits two squeezed ancillary modes as a part of the gate's operation. These…
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Taxonomy
TopicsMechanical and Optical Resonators · Quantum Information and Cryptography · Photonic and Optical Devices
