Quantum-enhanced distributed phase sensing with a truncated SU(1,1) interferometer

Author:

Hong Seongjin12,Feldman Matthew A.131,Marvinney Claire E.131,Lee Donghwa4,Lee Changhyoup5ORCID,Febbraro Michael T.1,Marino Alberto M.131ORCID,Pooser Raphael C.131ORCID

Affiliation:

1. Oak Ridge National Laboratory

2. Yonsei University

3. Quantum Science Center

4. Korea Institute of Science and Technology

5. Korea Research Institute of Standards and Science

Abstract

In recent years, distributed quantum sensing has gained interest for a range of applications requiring networks of sensors, from global-scale clock synchronization to high energy physics. In particular, a network of entangled sensors can improve not only the sensitivity beyond the shot noise limit, but also enable a Heisenberg scaling with the number of sensors. Here, using bright entangled twin beams, we theoretically and experimentally demonstrate the detection of a linear combination of two distributed phases beyond the shot noise limit with a truncated SU(1,1) interferometer. Specifically, we show a quantum noise reduction of 1.7±0.3 dB below what is possible with the corresponding classical configuration. Additionally, we theoretically extend the use of a truncated SU(1,1) interferometer to a multi-phase-distributed sensing scheme that leverages entanglement as a resource to achieve a quantum improvement in the scaling with the number of sensors in the network. Our results pave the way for developing quantum-enhanced sensor networks that can achieve an entanglement-enhanced sensitivity. Published by the American Physical Society 2025

Funder

U.S. Department of Energy

Office of Science

High Energy Physics

Institute for Information and Communications Technology Promotion

National Research Foundation of Korea

UT-Battelle

Publisher

American Physical Society (APS)

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