Quantum Enhanced Sensitivity through Many-Body Bloch Oscillations

Fuente: arXiv
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Main Authors: Manshouri, Hassan, Zarei, Moslem, Abdi, Mehdi, Bose, Sougato, Bayat, Abolfazl
Format: Preprint
Published: 2024
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author Manshouri, Hassan
Zarei, Moslem
Abdi, Mehdi
Bose, Sougato
Bayat, Abolfazl
author_facet Manshouri, Hassan
Zarei, Moslem
Abdi, Mehdi
Bose, Sougato
Bayat, Abolfazl
contents We investigate the sensing capacity of non-equilibrium dynamics in quantum systems exhibiting Bloch oscillations. By focusing on the resource efficiency of the probe, quantified by quantum Fisher information, we find different scaling behaviors in two different phases, namely localized and extended. Our results provide a quantitative ansatz for quantum Fisher information in terms of time, probe size, and the number of excitations. In the long-time regime, the quantum Fisher information is a quadratic function of time, touching the Heisenberg limit. The system size scaling drastically depends on the phase changing from quantum-enhanced scaling in the extended phase to size-independent behavior in the localized phase. Furthermore, increasing the number of excitations always enhances the precision of the probe, although, in the interacting systems the enhancement becomes less eminent than the non-interacting probes. This is due to the induced localization by increasing the interaction between the excitations. We show that a simple particle configuration measurement together with a maximum likelihood estimation can closely reach the ultimate precision limit in both single- and multi-particle probes.
format Preprint
id arxiv_https___arxiv_org_abs_2406_13921
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Quantum Enhanced Sensitivity through Many-Body Bloch Oscillations
Manshouri, Hassan
Zarei, Moslem
Abdi, Mehdi
Bose, Sougato
Bayat, Abolfazl
Quantum Physics
Strongly Correlated Electrons
We investigate the sensing capacity of non-equilibrium dynamics in quantum systems exhibiting Bloch oscillations. By focusing on the resource efficiency of the probe, quantified by quantum Fisher information, we find different scaling behaviors in two different phases, namely localized and extended. Our results provide a quantitative ansatz for quantum Fisher information in terms of time, probe size, and the number of excitations. In the long-time regime, the quantum Fisher information is a quadratic function of time, touching the Heisenberg limit. The system size scaling drastically depends on the phase changing from quantum-enhanced scaling in the extended phase to size-independent behavior in the localized phase. Furthermore, increasing the number of excitations always enhances the precision of the probe, although, in the interacting systems the enhancement becomes less eminent than the non-interacting probes. This is due to the induced localization by increasing the interaction between the excitations. We show that a simple particle configuration measurement together with a maximum likelihood estimation can closely reach the ultimate precision limit in both single- and multi-particle probes.
title Quantum Enhanced Sensitivity through Many-Body Bloch Oscillations
topic Quantum Physics
Strongly Correlated Electrons
url https://arxiv.org/abs/2406.13921