Barnett Effect-Induced Nonreciprocal Entanglement and Gaussian interferometric power in Magnomechanics with Optical Parametric Amplifier

Fuente: arXiv
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Main Authors: Chabar, Noura, Amghar, M., Ullah, Shakir, Amazioug, Mohamed, Nisar, Kottakkaran Sooppy, Zakarya, Mohammed, Ismail, Gamal M., Abdel-Aty, Abdel-Haleem
Format: Preprint
Published: 2025
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author Chabar, Noura
Amghar, M.
Ullah, Shakir
Amazioug, Mohamed
Nisar, Kottakkaran Sooppy
Zakarya, Mohammed
Ismail, Gamal M.
Abdel-Aty, Abdel-Haleem
author_facet Chabar, Noura
Amghar, M.
Ullah, Shakir
Amazioug, Mohamed
Nisar, Kottakkaran Sooppy
Zakarya, Mohammed
Ismail, Gamal M.
Abdel-Aty, Abdel-Haleem
contents Nonreciprocity is a powerful tool in quantum technologies. It allows signals to be sent in one direction but not the other. In this article, we propose a method for achieving non-reciprocal entanglement and Gaussian interferometric power (GIP) via the Barnett effect. The YIG is coupled to a microwave cavity that interacts with an optical parametric amplifier (OPA). Due to the Barnett effect, giant nonreciprocal entanglement can emerge. By fine-tuning the cavity detuning, the GIP can exhibits nonreciprocal behavior. All entanglements with ideal nonreciprocity can be achieved by tuning the photon frequency detuning, appropriately choosing the cavity-magnon coupling regime, the nonlinear gain, and the phase shift of the OPA. Interestingly, the amount of entanglement nonreciprocity and its resilience to thermal occupation are remarkably enhanced by increasing the gain of the OPA. This nonreciprocity can be significantly enhanced even at relatively high temperatures. Our research offers a pathway for the realization of nonreciprocal single-phonon devices, with potential applications in quantum information processing and quantum communication. This proposed scheme could pave the way for the development of novel nonreciprocal devices that remain robust under thermal fluctuations.
format Preprint
id arxiv_https___arxiv_org_abs_2509_25389
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Barnett Effect-Induced Nonreciprocal Entanglement and Gaussian interferometric power in Magnomechanics with Optical Parametric Amplifier
Chabar, Noura
Amghar, M.
Ullah, Shakir
Amazioug, Mohamed
Nisar, Kottakkaran Sooppy
Zakarya, Mohammed
Ismail, Gamal M.
Abdel-Aty, Abdel-Haleem
Quantum Physics
Nonreciprocity is a powerful tool in quantum technologies. It allows signals to be sent in one direction but not the other. In this article, we propose a method for achieving non-reciprocal entanglement and Gaussian interferometric power (GIP) via the Barnett effect. The YIG is coupled to a microwave cavity that interacts with an optical parametric amplifier (OPA). Due to the Barnett effect, giant nonreciprocal entanglement can emerge. By fine-tuning the cavity detuning, the GIP can exhibits nonreciprocal behavior. All entanglements with ideal nonreciprocity can be achieved by tuning the photon frequency detuning, appropriately choosing the cavity-magnon coupling regime, the nonlinear gain, and the phase shift of the OPA. Interestingly, the amount of entanglement nonreciprocity and its resilience to thermal occupation are remarkably enhanced by increasing the gain of the OPA. This nonreciprocity can be significantly enhanced even at relatively high temperatures. Our research offers a pathway for the realization of nonreciprocal single-phonon devices, with potential applications in quantum information processing and quantum communication. This proposed scheme could pave the way for the development of novel nonreciprocal devices that remain robust under thermal fluctuations.
title Barnett Effect-Induced Nonreciprocal Entanglement and Gaussian interferometric power in Magnomechanics with Optical Parametric Amplifier
topic Quantum Physics
url https://arxiv.org/abs/2509.25389