Nonreciprocal Multipartite Entanglement in a two-cavity magnomechanical system

Fuente: arXiv
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Main Authors: Ahmed, Rizwan, Ali, Hazrat, Shehzad, Aamir, Singh, S K, Sohail, Amjad, de Oliveira, Marcos Cesar
Format: Preprint
Published: 2024
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_version_ 1866917880375803904
author Ahmed, Rizwan
Ali, Hazrat
Shehzad, Aamir
Singh, S K
Sohail, Amjad
de Oliveira, Marcos Cesar
author_facet Ahmed, Rizwan
Ali, Hazrat
Shehzad, Aamir
Singh, S K
Sohail, Amjad
de Oliveira, Marcos Cesar
contents We propose a theoretical scheme for the generation of nonreciprocal multipartite entanglement in a two-mode cavity magnomechanical system, consisting of two cross-microwave (MW) cavities having a yttrium iron garnet (YIG) sphere, which is coupled through magnetic dipole interaction. Our results show that the self-Kerr effect of magnon can significantly enhance multipartite entanglement, which turns out to be nonreciprocal when the magnetic field is tuned along the crystallographic axis [110]. This is due to the frequency shift on the magnons (YIG sphere), which depends on the direction of the magnetic field. Interestingly, the degree of nonreciprocity of bipartite entanglements depends upon a careful optimal choice of system parameters like normalized cavity detunings, bipartite nonlinear index, self-Kerr coefficient, and effective magnomechanical coupling rate G. In addition to bipartite entanglement, we also present the idea of a bidirectional contrast ratio, which quantifies the nonreciprocity in tripartite entanglements. Our present theoretical proposal for nonreciprocity in multipartite entanglement may find applications in diverse engineering nonreciprocal devices
format Preprint
id arxiv_https___arxiv_org_abs_2405_16221
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Nonreciprocal Multipartite Entanglement in a two-cavity magnomechanical system
Ahmed, Rizwan
Ali, Hazrat
Shehzad, Aamir
Singh, S K
Sohail, Amjad
de Oliveira, Marcos Cesar
Quantum Physics
We propose a theoretical scheme for the generation of nonreciprocal multipartite entanglement in a two-mode cavity magnomechanical system, consisting of two cross-microwave (MW) cavities having a yttrium iron garnet (YIG) sphere, which is coupled through magnetic dipole interaction. Our results show that the self-Kerr effect of magnon can significantly enhance multipartite entanglement, which turns out to be nonreciprocal when the magnetic field is tuned along the crystallographic axis [110]. This is due to the frequency shift on the magnons (YIG sphere), which depends on the direction of the magnetic field. Interestingly, the degree of nonreciprocity of bipartite entanglements depends upon a careful optimal choice of system parameters like normalized cavity detunings, bipartite nonlinear index, self-Kerr coefficient, and effective magnomechanical coupling rate G. In addition to bipartite entanglement, we also present the idea of a bidirectional contrast ratio, which quantifies the nonreciprocity in tripartite entanglements. Our present theoretical proposal for nonreciprocity in multipartite entanglement may find applications in diverse engineering nonreciprocal devices
title Nonreciprocal Multipartite Entanglement in a two-cavity magnomechanical system
topic Quantum Physics
url https://arxiv.org/abs/2405.16221