Quantum thermodynamic derivation of the energy resolution limit in magnetometry

Fuente: arXiv
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Autor principal: Kominis, I. K.
Formato: Preprint
Publicado: 2024
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author Kominis, I. K.
author_facet Kominis, I. K.
contents It was recently demonstrated that a multitude of realizations of several magnetic sensing technologies satisfy the energy resolution limit, which connects a quantity composed by the variance of the magnetic field estimate, the sensor volume and the measurement time, and having units of action, with $\hbar$. A first-principles derivation of this limit is still elusive. We here present such a derivation based on quantum thermodynamic arguments. We show that the energy resolution limit is a result of quantum thermodynamic work necessarily associated with quantum measurement and Landauer erasure, the work being exchanged with the magnetic field. We apply these considerations to atomic magnetometers, diamond magnetometers, and SQUIDs, spanning an energy resolution limit from $10^0\hbar$ to $10^7\hbar$. This connection between quantum thermodynamics and magnetometry can help advance quantum sensing technologies towards even more sensitive devices.
format Preprint
id arxiv_https___arxiv_org_abs_2405_14687
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Quantum thermodynamic derivation of the energy resolution limit in magnetometry
Kominis, I. K.
Quantum Physics
Atomic Physics
It was recently demonstrated that a multitude of realizations of several magnetic sensing technologies satisfy the energy resolution limit, which connects a quantity composed by the variance of the magnetic field estimate, the sensor volume and the measurement time, and having units of action, with $\hbar$. A first-principles derivation of this limit is still elusive. We here present such a derivation based on quantum thermodynamic arguments. We show that the energy resolution limit is a result of quantum thermodynamic work necessarily associated with quantum measurement and Landauer erasure, the work being exchanged with the magnetic field. We apply these considerations to atomic magnetometers, diamond magnetometers, and SQUIDs, spanning an energy resolution limit from $10^0\hbar$ to $10^7\hbar$. This connection between quantum thermodynamics and magnetometry can help advance quantum sensing technologies towards even more sensitive devices.
title Quantum thermodynamic derivation of the energy resolution limit in magnetometry
topic Quantum Physics
Atomic Physics
url https://arxiv.org/abs/2405.14687