Maximizing information obtainable by quantum sensors through the Quantum Zeno Effect

Fuente: arXiv
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Main Authors: Ronchi, Bruno, Zwick, Analia, Alvarez, Gonzalo A.
Format: Preprint
Published: 2024
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author Ronchi, Bruno
Zwick, Analia
Alvarez, Gonzalo A.
author_facet Ronchi, Bruno
Zwick, Analia
Alvarez, Gonzalo A.
contents Efficient quantum sensing technologies rely on precise control of quantum sensors, particularly two-level systems or qubits, to optimize estimation processes. We here exploit the Quantum Zeno Effect (QZE) as a tool for maximizing information obtainable by quantum sensors, with a specific focus on the level avoided crossing (LAC) phenomenon in qubit systems. While the estimation of the LAC energy splitting has been extensively studied, we emphasize the crucial role that the QZE can play in estimating the coupling strength. We introduce the concept of information amplification by the QZE for a LAC system under off-resonant conditions. The proposed approach has implications for AC magnetic field sensing and the caracterization of complex systems, including many-spin systems requiring the estimation of spin-spin couplings. Overall, our findings contribute to the advancement of quantum sensing by leveraging the QZE for improved control and information extraction.
format Preprint
id arxiv_https___arxiv_org_abs_2403_11339
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Maximizing information obtainable by quantum sensors through the Quantum Zeno Effect
Ronchi, Bruno
Zwick, Analia
Alvarez, Gonzalo A.
Quantum Physics
Mesoscale and Nanoscale Physics
Applied Physics
Efficient quantum sensing technologies rely on precise control of quantum sensors, particularly two-level systems or qubits, to optimize estimation processes. We here exploit the Quantum Zeno Effect (QZE) as a tool for maximizing information obtainable by quantum sensors, with a specific focus on the level avoided crossing (LAC) phenomenon in qubit systems. While the estimation of the LAC energy splitting has been extensively studied, we emphasize the crucial role that the QZE can play in estimating the coupling strength. We introduce the concept of information amplification by the QZE for a LAC system under off-resonant conditions. The proposed approach has implications for AC magnetic field sensing and the caracterization of complex systems, including many-spin systems requiring the estimation of spin-spin couplings. Overall, our findings contribute to the advancement of quantum sensing by leveraging the QZE for improved control and information extraction.
title Maximizing information obtainable by quantum sensors through the Quantum Zeno Effect
topic Quantum Physics
Mesoscale and Nanoscale Physics
Applied Physics
url https://arxiv.org/abs/2403.11339