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Distributed quantum sensing of multiple phases with fewer photons

Physics

Distributed quantum sensing of multiple phases with fewer photons

D. Kim, S. Hong, et al.

This groundbreaking research conducted by Dong-Hyun Kim, Seongjin Hong, Yong-Su Kim, Yosep Kim, Seung-Woo Lee, Raphael C. Pooser, Kyunghwan Oh, Su-Yong Lee, Changhyoup Lee, and Hyang-Tag Lim presents a revolutionary distributed quantum sensing protocol that utilizes fewer photons than parameters, achieving an impressive 2.2 dB sensitivity enhancement over traditional methods. Discover a new pathway for large-scale distributed quantum sensing with readily available entangled sources!

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~3 min • Beginner • English
Abstract
Distributed quantum metrology has drawn intense interest as it outperforms the optimal classical counterparts in estimating multiple distributed parameters. However, most schemes so far have required entangled resources consisting of photon numbers equal to or more than the parameter numbers, which is a fairly demanding requirement as the number of nodes increases. Here, we present a distributed quantum sensing scenario in which quantum-enhanced sensitivity can be achieved with fewer photons than the number of parameters. As an experimental demonstration, using a two-photon entangled state, we estimate four phases distributed 3 km away from the central node, resulting in a 2.2 dB sensitivity enhancement from the standard quantum limit. Our results show that the Heisenberg scaling can be achieved even when using fewer photons than the number of parameters. We believe our scheme will open a pathway to perform large-scale distributed quantum sensing with currently available entangled sources.
Publisher
Nature Communications
Published On
Jan 11, 2024
Authors
Dong-Hyun Kim, Seongjin Hong, Yong-Su Kim, Yosep Kim, Seung-Woo Lee, Raphael C. Pooser, Kyunghwan Oh, Su-Yong Lee, Changhyoup Lee, Hyang-Tag Lim
Tags
distributed quantum metrology
quantum sensing
entangled photons
sensitivity enhancement
quantum limit
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