利用手性腔-磁子耦合的腔磁力学中的非互易纠缠

IF 6.3 3区 综合性期刊 Q1 Multidisciplinary
Zhiyuan Fan, Xuan Zuo, Haotian Li, Jie Li
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引用次数: 0

摘要

我们提出了一种利用手性腔-磁振子耦合实现腔磁力系统中非互易量子纠缠的新机制。该系统在环形腔内由一个磁振子模、一个机械振动模和两个简并逆传播微波腔模组成。我们证明了非互易稳态微波-磁振子和-声子二部纠缠和光子-磁振子-声子三部纠缠可以通过分别驱动不同的循环腔模式来实现,这些模式保持了与磁振子模式的手性耦合。结果表明,非互易纠缠对各种实验缺陷具有很强的鲁棒性。我们特别展示了这种非互易纠缠如何实现从微波场到固态磁振子模式的信道复用量子隐形传态。这项工作可能会发现腔磁力学系统在耐噪声量子处理、信道复用量子隐形传态和手性磁力学量子网络中的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Nonreciprocal entanglement in cavity magnomechanics exploiting chiral cavity-magnon coupling

Nonreciprocal entanglement in cavity magnomechanics exploiting chiral cavity-magnon coupling
We propose a new mechanism to achieve nonreciprocal quantum entanglement in a cavity magnomechanical system by exploiting the chiral cavity-magnon coupling. The system consists of a magnon mode, a mechanical vibration mode, and two degenerate counter-propagating microwave cavity modes in a torus-shaped cavity. We show that nonreciprocal stationary microwave-magnon and -phonon bipartite entanglements and photon-magnon-phonon tripartite entanglement can be achieved by respectively driving different circulating cavity modes that hold a chiral coupling to the magnon mode. The nonreciprocal entanglements are shown to be robust against various experimental imperfections. We specifically show how such nonreciprocal entanglement can realize the channel multiplexing quantum teleportation from a microwave field to a solid-state magnon mode. The work may find promising applications of the cavity magnomechanical systems in noise-tolerant quantum processing, channel multiplexing quantum teleportation, and chiral magnonic quantum networks.
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来源期刊
Fundamental Research
Fundamental Research Multidisciplinary-Multidisciplinary
CiteScore
4.00
自引率
1.60%
发文量
294
审稿时长
79 days
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