Quantum sensing with ultracold simulators in lattice and ensemble systems: a review

Fuente: arXiv
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Autori principali: Agarwal, Keshav Das, Mondal, Sayan, Sahoo, Ayan, Rakshit, Debraj, De, Aditi Sen, Sen, Ujjwal
Natura: Preprint
Pubblicazione: 2025
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author Agarwal, Keshav Das
Mondal, Sayan
Sahoo, Ayan
Rakshit, Debraj
De, Aditi Sen
Sen, Ujjwal
author_facet Agarwal, Keshav Das
Mondal, Sayan
Sahoo, Ayan
Rakshit, Debraj
De, Aditi Sen
Sen, Ujjwal
contents Sensing of parameters is an important aspect in all disciplines, with applications ranging from fundamental science to medicine. Quantum sensing and metrology is an emerging field that lies at the cross-roads of quantum physics, quantum technology, and the discipline in which the parameter estimation is to be performed. While miniaturization of devices often requires quantum mechanics to be utilized for understanding and planning of a parameter estimation, quantum-enhanced sensing is also possible that uses paradigmatic quantum characteristics like quantum coherence and quantum entanglement to go beyond the so-called standard quantum limit. The current review hopes to bring together the concepts related to quantum sensing as realized in ensemble systems, like spin ensembles, light-matter systems, and Bose-Einstein condensates, and lattice systems, like those which can be modeled by the Bose- and Fermi-Hubbard models, and quantum spin models.
format Preprint
id arxiv_https___arxiv_org_abs_2507_06348
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum sensing with ultracold simulators in lattice and ensemble systems: a review
Agarwal, Keshav Das
Mondal, Sayan
Sahoo, Ayan
Rakshit, Debraj
De, Aditi Sen
Sen, Ujjwal
Quantum Physics
Mesoscale and Nanoscale Physics
Quantum Gases
Atomic Physics
Sensing of parameters is an important aspect in all disciplines, with applications ranging from fundamental science to medicine. Quantum sensing and metrology is an emerging field that lies at the cross-roads of quantum physics, quantum technology, and the discipline in which the parameter estimation is to be performed. While miniaturization of devices often requires quantum mechanics to be utilized for understanding and planning of a parameter estimation, quantum-enhanced sensing is also possible that uses paradigmatic quantum characteristics like quantum coherence and quantum entanglement to go beyond the so-called standard quantum limit. The current review hopes to bring together the concepts related to quantum sensing as realized in ensemble systems, like spin ensembles, light-matter systems, and Bose-Einstein condensates, and lattice systems, like those which can be modeled by the Bose- and Fermi-Hubbard models, and quantum spin models.
title Quantum sensing with ultracold simulators in lattice and ensemble systems: a review
topic Quantum Physics
Mesoscale and Nanoscale Physics
Quantum Gases
Atomic Physics
url https://arxiv.org/abs/2507.06348