Microwave-field quantum metrology with inherent robustness against detection losses enabled by Rydberg interactions

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Kurzyna, Stanisław, Niewelt, Bartosz, Mazelanik, Mateusz, Wasilewski, Wojciech, Demkowicz-Dobrzański, Rafał, Parniak, Michał
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866914186948247552
author Kurzyna, Stanisław
Niewelt, Bartosz
Mazelanik, Mateusz
Wasilewski, Wojciech
Demkowicz-Dobrzański, Rafał
Parniak, Michał
author_facet Kurzyna, Stanisław
Niewelt, Bartosz
Mazelanik, Mateusz
Wasilewski, Wojciech
Demkowicz-Dobrzański, Rafał
Parniak, Michał
contents Quantum sensing and metrology present one of the most promising near-term applications in the field of quantum technologies, with quantum sensors enabling unprecedented precision in measurements of electric, magnetic or gravitational fields and displacements. Experimental loss at the detection stage remains one of the key obstacles to achieving a truly quantum advantage in many practical scenarios. Here, we combine the capabilities of Rydberg atoms to both sense external fields and be used for quantum information processing, thereby largely overcoming the issue of detection losses. While utilising the large dipole moments of Rydberg atoms in an ensemble to achieve a $\SI{39}{\nV\per\cm \hertz\tothe{-1/2}}$ sensitivity, we employ inter-atomic dipolar interactions to take advantage of an error-prevention protocol that protects information against conventional losses at the detection stage. Counterintuitively, the protocol's idea is based on introducing an additional non-linear, lossy quantum channel, which results in a 3.3-fold enhancement of Fisher information. The presented results pave the way for broader adoption of quantum-information-inspired enhancements enabled by intrinsic interactions present in a sensor system, and more broadly in practical quantum metrology and communication, without the need for a general-purpose quantum computer.
format Preprint
id arxiv_https___arxiv_org_abs_2505_01506
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Microwave-field quantum metrology with inherent robustness against detection losses enabled by Rydberg interactions
Kurzyna, Stanisław
Niewelt, Bartosz
Mazelanik, Mateusz
Wasilewski, Wojciech
Demkowicz-Dobrzański, Rafał
Parniak, Michał
Quantum Physics
Atomic Physics
Optics
Quantum sensing and metrology present one of the most promising near-term applications in the field of quantum technologies, with quantum sensors enabling unprecedented precision in measurements of electric, magnetic or gravitational fields and displacements. Experimental loss at the detection stage remains one of the key obstacles to achieving a truly quantum advantage in many practical scenarios. Here, we combine the capabilities of Rydberg atoms to both sense external fields and be used for quantum information processing, thereby largely overcoming the issue of detection losses. While utilising the large dipole moments of Rydberg atoms in an ensemble to achieve a $\SI{39}{\nV\per\cm \hertz\tothe{-1/2}}$ sensitivity, we employ inter-atomic dipolar interactions to take advantage of an error-prevention protocol that protects information against conventional losses at the detection stage. Counterintuitively, the protocol's idea is based on introducing an additional non-linear, lossy quantum channel, which results in a 3.3-fold enhancement of Fisher information. The presented results pave the way for broader adoption of quantum-information-inspired enhancements enabled by intrinsic interactions present in a sensor system, and more broadly in practical quantum metrology and communication, without the need for a general-purpose quantum computer.
title Microwave-field quantum metrology with inherent robustness against detection losses enabled by Rydberg interactions
topic Quantum Physics
Atomic Physics
Optics
url https://arxiv.org/abs/2505.01506