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Nonreciprocal microwave–optical entanglement in Kerr-modified cavity optomagnomechanics

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摘要 Microwave–optical entanglement is essential for efficient quantum communication,secure information transfer,and integrating microwave and optical quantum systems to advance hybrid quantum technologies.In this work,we demonstrate how the magnon Kerr effect can be harnessed to generate and control nonreciprocal entanglement in cavity optomagnomechanics(COMM).This effect induces magnon frequency shifts and introduces pair-magnon interactions,both of which are tunable through the magnetic field direction,enabling nonreciprocal behavior.By adjusting system parameters such as magnon frequency detuning,we show that magnon–phonon,microwave–optical photon–photon,and optical photon–magnon entanglement can be nonreciprocally enhanced and rendered more robust against thermal noise.Additionally,the nonreciprocity of entanglement can be selectively controlled,and ideal nonreciprocal entanglement is achievable.This work paves the way for designing nonreciprocal quantum devices across the microwave and optical regimes,leveraging the unique properties of the magnon Kerr effect in COMM.
作者 Ming-Yue Liu Yuan Gong Jiaojiao Chen Yan-Wei Wang Wei Xiong 刘明月;龚媛;陈姣姣;王艳伟;熊伟
出处 《Chinese Physics B》 2025年第5期10-17,共8页 中国物理B(英文版)
基金 supported by the Natural Science Foundation of Zhejiang Province(Grant No.LY24A040004) the“Pioneer”and“Leading Goose”R&D Program of Zhejiang(Grant No.2025C01028) the Shenzhen International Quantum Academy(Grant No.SIQA2024KFKT010) YWW is supported by the Natural Science Foundation of Zhejiang Province(Grant No.LY23A40002) Wenzhou Science and Technology Plan Project(Grant No.L20240004).
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