Microwave-optics Entanglement via Cavity Optomagnomechanics

Fuente: arXiv
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Hauptverfasser: Fan, Zhi-Yuan, Qiu, Liu, Gröblacher, Simon, Li, Jie
Format: Preprint
Veröffentlicht: 2022
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author Fan, Zhi-Yuan
Qiu, Liu
Gröblacher, Simon
Li, Jie
author_facet Fan, Zhi-Yuan
Qiu, Liu
Gröblacher, Simon
Li, Jie
contents Microwave-optics entanglement is a vital component for building hybrid quantum networks. Here, a new mechanism for preparing stationary entanglement between microwave and optical cavity fields in a cavity optomagnomechanical system is proposed. It consists of a magnon mode in a ferrimagnetic crystal that couples directly to a microwave cavity mode via the magnetic dipole interaction, and indirectly to an optical cavity through the deformation displacement of the crystal. The mechanical displacement is induced by the magnetostrictive force and coupled to the optical cavity via radiation pressure. Both the opto- and magnomechanical couplings are dispersive. Magnon-phonon entanglement is created via magnomechanical parametric down-conversion, which is further distributed to optical and microwave photons via simultaneous optomechanical beamsplitter interaction and electromagnonic state-swap interaction, yielding stationary microwave-optics entanglement. The microwave-optics entanglement is robust against thermal noise, which will find broad potential applications in quantum networks and quantum information processing with hybrid quantum systems.
format Preprint
id arxiv_https___arxiv_org_abs_2208_10703
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Microwave-optics Entanglement via Cavity Optomagnomechanics
Fan, Zhi-Yuan
Qiu, Liu
Gröblacher, Simon
Li, Jie
Quantum Physics
Mesoscale and Nanoscale Physics
Applied Physics
Optics
Microwave-optics entanglement is a vital component for building hybrid quantum networks. Here, a new mechanism for preparing stationary entanglement between microwave and optical cavity fields in a cavity optomagnomechanical system is proposed. It consists of a magnon mode in a ferrimagnetic crystal that couples directly to a microwave cavity mode via the magnetic dipole interaction, and indirectly to an optical cavity through the deformation displacement of the crystal. The mechanical displacement is induced by the magnetostrictive force and coupled to the optical cavity via radiation pressure. Both the opto- and magnomechanical couplings are dispersive. Magnon-phonon entanglement is created via magnomechanical parametric down-conversion, which is further distributed to optical and microwave photons via simultaneous optomechanical beamsplitter interaction and electromagnonic state-swap interaction, yielding stationary microwave-optics entanglement. The microwave-optics entanglement is robust against thermal noise, which will find broad potential applications in quantum networks and quantum information processing with hybrid quantum systems.
title Microwave-optics Entanglement via Cavity Optomagnomechanics
topic Quantum Physics
Mesoscale and Nanoscale Physics
Applied Physics
Optics
url https://arxiv.org/abs/2208.10703