Magnonic entanglement in a chiral cavity-magnon coupling system

Fuente: arXiv
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Autori principali: Kang, Yuxin, Zeng, Xin, Zhang, Wuji, Sun, Chunfang, Wu, Chunfeng, Wang, Gangcheng
Natura: Preprint
Pubblicazione: 2025
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author Kang, Yuxin
Zeng, Xin
Zhang, Wuji
Sun, Chunfang
Wu, Chunfeng
Wang, Gangcheng
author_facet Kang, Yuxin
Zeng, Xin
Zhang, Wuji
Sun, Chunfang
Wu, Chunfeng
Wang, Gangcheng
contents The generation of magnon entanglement and squeezing plays a crucial role in quantum information processing. In this study, we propose a scheme based on a chiral cavity-magnon system, which consists of a torus-shaped cavity and two yttrium iron garnet spheres. The magnon mode of each yttrium iron garnet sphere is selectively coupled to one of the two degenerate rotating microwave modes of the toroidal cavity. The system aims to achieve entangled and squeezed magnon states through the mediation of the cavity. We further show that bipartite entanglement can be achieved by tuning external driving parameters. Additionally, our scheme does not rely on the magnon Kerr nonlinearity, which is usually extremely weak in yttrium iron garnet spheres. This work provides insights and methods for the research of quantum states in cavity-magnon systems.
format Preprint
id arxiv_https___arxiv_org_abs_2505_16395
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Magnonic entanglement in a chiral cavity-magnon coupling system
Kang, Yuxin
Zeng, Xin
Zhang, Wuji
Sun, Chunfang
Wu, Chunfeng
Wang, Gangcheng
Quantum Physics
The generation of magnon entanglement and squeezing plays a crucial role in quantum information processing. In this study, we propose a scheme based on a chiral cavity-magnon system, which consists of a torus-shaped cavity and two yttrium iron garnet spheres. The magnon mode of each yttrium iron garnet sphere is selectively coupled to one of the two degenerate rotating microwave modes of the toroidal cavity. The system aims to achieve entangled and squeezed magnon states through the mediation of the cavity. We further show that bipartite entanglement can be achieved by tuning external driving parameters. Additionally, our scheme does not rely on the magnon Kerr nonlinearity, which is usually extremely weak in yttrium iron garnet spheres. This work provides insights and methods for the research of quantum states in cavity-magnon systems.
title Magnonic entanglement in a chiral cavity-magnon coupling system
topic Quantum Physics
url https://arxiv.org/abs/2505.16395