Transfer of Quantum States and Stationary Quantum Correlations in a Hybrid Optomechanical Network

We present a systematic study on the effects of dynamical transfer and steady-state synchronization of quantum states in a hybrid optomechanical network consisting of two cavities, which carry atoms inside and interact via a common moving mirror such as the mechanical oscillator. It is found that a...

Full description

Bibliographic Details
Main Authors: Hugo Molinares, Bing He, Vitalie Eremeev
Format: Article
Language:English
Published: MDPI AG 2023-06-01
Series:Mathematics
Subjects:
Online Access:https://www.mdpi.com/2227-7390/11/13/2790
_version_ 1827734885490491392
author Hugo Molinares
Bing He
Vitalie Eremeev
author_facet Hugo Molinares
Bing He
Vitalie Eremeev
author_sort Hugo Molinares
collection DOAJ
description We present a systematic study on the effects of dynamical transfer and steady-state synchronization of quantum states in a hybrid optomechanical network consisting of two cavities, which carry atoms inside and interact via a common moving mirror such as the mechanical oscillator. It is found that a high fidelity transfer of Schrödinger’s cat and squeezed states between two cavities modes is possible. On the other hand, we demonstrate the synchronization effect of the cavity modes in a steady squeezed state with its high fidelity realized by the mechanical oscillator that intermediates the generation, transfer and stabilization of the squeezing. In this framework, we also study the generation and evolution of bipartite and tripartite entanglement and find its connection to the effects of quantum state transfer and synchronization. Particularly, when the transfer occurs at the maximal fidelity, any entanglement is almost zero, so the different cavity modes are disentangled. However, these modes become entangled when the two bosonic modes are synchronized in a stationary squeezed state. The results provided by the current study may find applications in quantum information technologies, in addition to the setups for metrology, where squeezed states are essential.
first_indexed 2024-03-11T01:35:40Z
format Article
id doaj.art-e9a3a365c3f24ab88ac2e5b2cd8d2c00
institution Directory Open Access Journal
issn 2227-7390
language English
last_indexed 2024-03-11T01:35:40Z
publishDate 2023-06-01
publisher MDPI AG
record_format Article
series Mathematics
spelling doaj.art-e9a3a365c3f24ab88ac2e5b2cd8d2c002023-11-18T17:01:23ZengMDPI AGMathematics2227-73902023-06-011113279010.3390/math11132790Transfer of Quantum States and Stationary Quantum Correlations in a Hybrid Optomechanical NetworkHugo Molinares0Bing He1Vitalie Eremeev2Departamento de Ciencias Físicas, Universidad de La Frontera, Casilla 54-D, Temuco 4780000, ChileCentro de Optica e Información Cuántica, Universidad Mayor, Camino La Piramide 5750, Huechuraba 8580745, ChileInstituto de Ciencias Básicas, Facultad de Ingeniería y Ciencias, Universidad Diego Portales, Av. Ejercito 441, Santiago 8370109, ChileWe present a systematic study on the effects of dynamical transfer and steady-state synchronization of quantum states in a hybrid optomechanical network consisting of two cavities, which carry atoms inside and interact via a common moving mirror such as the mechanical oscillator. It is found that a high fidelity transfer of Schrödinger’s cat and squeezed states between two cavities modes is possible. On the other hand, we demonstrate the synchronization effect of the cavity modes in a steady squeezed state with its high fidelity realized by the mechanical oscillator that intermediates the generation, transfer and stabilization of the squeezing. In this framework, we also study the generation and evolution of bipartite and tripartite entanglement and find its connection to the effects of quantum state transfer and synchronization. Particularly, when the transfer occurs at the maximal fidelity, any entanglement is almost zero, so the different cavity modes are disentangled. However, these modes become entangled when the two bosonic modes are synchronized in a stationary squeezed state. The results provided by the current study may find applications in quantum information technologies, in addition to the setups for metrology, where squeezed states are essential.https://www.mdpi.com/2227-7390/11/13/2790optomechanical networkmechanical oscillatorsqueezingentanglementtransfer and synchronization of quantum state
spellingShingle Hugo Molinares
Bing He
Vitalie Eremeev
Transfer of Quantum States and Stationary Quantum Correlations in a Hybrid Optomechanical Network
Mathematics
optomechanical network
mechanical oscillator
squeezing
entanglement
transfer and synchronization of quantum state
title Transfer of Quantum States and Stationary Quantum Correlations in a Hybrid Optomechanical Network
title_full Transfer of Quantum States and Stationary Quantum Correlations in a Hybrid Optomechanical Network
title_fullStr Transfer of Quantum States and Stationary Quantum Correlations in a Hybrid Optomechanical Network
title_full_unstemmed Transfer of Quantum States and Stationary Quantum Correlations in a Hybrid Optomechanical Network
title_short Transfer of Quantum States and Stationary Quantum Correlations in a Hybrid Optomechanical Network
title_sort transfer of quantum states and stationary quantum correlations in a hybrid optomechanical network
topic optomechanical network
mechanical oscillator
squeezing
entanglement
transfer and synchronization of quantum state
url https://www.mdpi.com/2227-7390/11/13/2790
work_keys_str_mv AT hugomolinares transferofquantumstatesandstationaryquantumcorrelationsinahybridoptomechanicalnetwork
AT binghe transferofquantumstatesandstationaryquantumcorrelationsinahybridoptomechanicalnetwork
AT vitalieeremeev transferofquantumstatesandstationaryquantumcorrelationsinahybridoptomechanicalnetwork