Quantum-Enhanced Metrology in Cavity Magnomechanics

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Wan, Qing-Kun, Shi, Hai-Long, Guan, Xi-Wen
Format: Preprint
Published: 2023
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866910301745577984
author Wan, Qing-Kun
Shi, Hai-Long
Guan, Xi-Wen
author_facet Wan, Qing-Kun
Shi, Hai-Long
Guan, Xi-Wen
contents Magnons, as fundamental quasiparticles emerged in elementary spin excitations, hold a big promise for innovating quantum technologies in information coding and processing. Here we discover subtle roles of entanglement in a metrological scheme based on an experimentally feasible cavity magnomechanical system, where the magnons are responsible for sensing a weak magnetic field whereas the cavity field carries out a precision measurement of the weak field. By establishing exact relations between the Fisher information and entanglement, we show that for the weak coupling case the measurement precision can reach the Heisenberg limit, whereas quantum criticality enables us to enhance measurement precision for the strong coupling case. In particular, we also find that the entanglement between magnons and photons is of crucial importance during the dynamical encoding process, but the presence of such an entanglement in the measurement process dramatically reduces the final measurement precision.
format Preprint
id arxiv_https___arxiv_org_abs_2305_08045
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Quantum-Enhanced Metrology in Cavity Magnomechanics
Wan, Qing-Kun
Shi, Hai-Long
Guan, Xi-Wen
Quantum Physics
Other Condensed Matter
Magnons, as fundamental quasiparticles emerged in elementary spin excitations, hold a big promise for innovating quantum technologies in information coding and processing. Here we discover subtle roles of entanglement in a metrological scheme based on an experimentally feasible cavity magnomechanical system, where the magnons are responsible for sensing a weak magnetic field whereas the cavity field carries out a precision measurement of the weak field. By establishing exact relations between the Fisher information and entanglement, we show that for the weak coupling case the measurement precision can reach the Heisenberg limit, whereas quantum criticality enables us to enhance measurement precision for the strong coupling case. In particular, we also find that the entanglement between magnons and photons is of crucial importance during the dynamical encoding process, but the presence of such an entanglement in the measurement process dramatically reduces the final measurement precision.
title Quantum-Enhanced Metrology in Cavity Magnomechanics
topic Quantum Physics
Other Condensed Matter
url https://arxiv.org/abs/2305.08045