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Study may lead to improved networked quantum sensing - Phys.org

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⚡ Quantum Brief
A University of Rhode Island physicist and a U.S. Army quantum researcher demonstrated a method to achieve the Heisenberg limit—the ultimate precision boundary in quantum sensing—using a minimal two-state entangled network, potentially revolutionizing measurement accuracy. The study, published in Physical Review Letters (September 2025), proves that entangled quantum networks can enhance sensitivity for detecting phase shifts, improving GPS precision from 10-meter radii to near-exact distances by leveraging quantum correlations. Networked quantum sensing, which relies on nonclassical entanglement, could transform navigation, motion tracking, and electromagnetic field detection by treating sensors as an interconnected system rather than isolated devices. Funded by a 2022 grant, the research also advances quantum metrology’s role in national security and fundamental physics while training graduate students in quantum information science at URI. Next steps focus on optimizing information extraction from quantum systems to fully exploit their sensitivity, with implications for future quantum-enhanced technologies in communication and computing.
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October 28, 2025 Study may lead to improved networked quantum sensing by James Bessette, University of Rhode Island edited by Lisa Lock, reviewed by Robert Egan Editors' notes This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: fact-checked peer-reviewed publication trusted source proofread The GIST Add as preferred source A four-mode linear network U for generating useful entangled states for continuous-variable distributed quantum metrology. The ratio of the transmittance to the reflectance of each beam splitter is denoted. Credit: Wenchao Ge et al Could global positioning systems become more precise and provide more accurate details on distances for users to get from point A to point B? A study by University of Rhode Island assistant physics professor Wenchao Ge in collaboration with Kurt Jacobs, a physicist of quantum tech with the U.S. Army, which was recently published by Physical Review Letters, may lead to more enhanced quantum sensing and make such detection data more definitive. Ge's study, "Heisenberg-Limited Continuous-Variable Distributed Quantum Metrology with Arbitrary Weights" published by in September, looked at networked quantum sensing, which explores advanced sensor technology in an entangled network that could improve accuracy on how to measure, navigate and explore the world, such as by sensing changes in motion, and electric or magnetic fields. An entangled network is a nonclassical network where the sensors cannot be described separately. Ge focused on whether and how the Heisenberg limit—the fundamental limit in quantum-enhanced sensing, allowing estimation with a precision beyond classical approaches—can be achieved. The study found that a minimal setup can prepare a useful entangled network and achieve the Heisenberg limit through two single-mode quantum states. That setup, Ge says, can measure a function of "phase shifts," which can translate to improved distance measurement or other complicated signals of interest. In other words, if a person is using a GPS for travel, improved quantum sensitivity can lead to more precise information of a specific destination. "It could make the GPS and time estimation more precise. This would affect the current GPS, which everyday use can tell you a location within 10 meters of a radius," said Ge. "With this, it will predict the distance with pinpoint precision." Ge's research focuses on theoretical quantum optics and quantum information. He explores fundamental limits allowed by quantum mechanics to access information (quantum sensing), transfer information (quantum communicating), and process information (quantum computing). He has now published more than 30 studies on quantum-related work.

This research of Ge is part of a three-year grant he received in 2022 to explore nonclassical states for quantum metrology via quantum resource theory. Ge says that further development within the quantum metrology field will not only improve society's understanding of the fundamental underpinnings of nature, but it will also advance national security and technology. The project has provided research opportunities for graduate and undergraduate students, building a diverse workforce within quantum information science at URI. Moving forward, Ge says researchers need to find optimal methods to extract information from quantum objects to better understand their sensitivity and determine what can be achieved. More information: Wenchao Ge et al, Heisenberg-Limited Continuous-Variable Distributed Quantum Metrology with Arbitrary Weights, Physical Review Letters (2025). DOI: 10.1103/jkjj-3gvb. On arXiv: DOI: 10.48550/arxiv.2412.01074 Journal information: Physical Review Letters , arXiv Provided by University of Rhode Island Citation: Study may lead to improved networked quantum sensing (2025, October 28) retrieved 7 January 2026 from https://phys.org/news/2025-10-networked-quantum.html This document is subject to copyright. Apart from any fair dealing for the purpose of private study or research, no part may be reproduced without the written permission. The content is provided for information purposes only.

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