On-Demand Magnon Resonance Isolation in Cavity Magnonics
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arXiv
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| Main Authors: | , , , , , , , , , |
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| Format: | Preprint |
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2024
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| _version_ | 1866909435929034752 |
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| author | Pishehvar, Amin Wang, Zhaoyou Zhu, Yujie Jiang, Yu Yan, Zixin Li, Fangxin Jornet, Josep M. Hu, Jia-Mian Jiang, Liang Zhang, Xufeng |
| author_facet | Pishehvar, Amin Wang, Zhaoyou Zhu, Yujie Jiang, Yu Yan, Zixin Li, Fangxin Jornet, Josep M. Hu, Jia-Mian Jiang, Liang Zhang, Xufeng |
| contents | Cavity magnonics is a promising field focusing the interaction between spin waves (magnons) and other types of signals. In cavity magnonics, the function of isolating magnons from the cavity to allow signal storage and processing fully in the magnonic domain is highly desired, but its realization is often hindered by the lack of necessary tunability on the interaction. This work shows that by utilizing the collective mode of two YIG spheres and adopting Floquet engineering, magnonic signals can be switched on-demand to a magnon dark mode that is protected from the environment, enabling a variety of manipulation over the magnon dynamics. Our demonstration can be scaled up to systems with an array of magnonic resonators, paving the way for large-scale programmable hybrid magnonic circuits. |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2412_15600 |
| institution | arXiv |
| publishDate | 2024 |
| record_format | arxiv |
| spellingShingle | On-Demand Magnon Resonance Isolation in Cavity Magnonics Pishehvar, Amin Wang, Zhaoyou Zhu, Yujie Jiang, Yu Yan, Zixin Li, Fangxin Jornet, Josep M. Hu, Jia-Mian Jiang, Liang Zhang, Xufeng Mesoscale and Nanoscale Physics Applied Physics Cavity magnonics is a promising field focusing the interaction between spin waves (magnons) and other types of signals. In cavity magnonics, the function of isolating magnons from the cavity to allow signal storage and processing fully in the magnonic domain is highly desired, but its realization is often hindered by the lack of necessary tunability on the interaction. This work shows that by utilizing the collective mode of two YIG spheres and adopting Floquet engineering, magnonic signals can be switched on-demand to a magnon dark mode that is protected from the environment, enabling a variety of manipulation over the magnon dynamics. Our demonstration can be scaled up to systems with an array of magnonic resonators, paving the way for large-scale programmable hybrid magnonic circuits. |
| title | On-Demand Magnon Resonance Isolation in Cavity Magnonics |
| topic | Mesoscale and Nanoscale Physics Applied Physics |
| url | https://arxiv.org/abs/2412.15600 |