Stationary Quantum Entanglement and Asymmetric Steering in Cavity Magnonic System with Floquet Field and Coherent Feedback

IF 4.4 Q1 OPTICS
Si-Yu Guan, Hong-Fu Wang, Xuexi Yi
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Abstract

A scheme is proposed to prepare quantum entanglement and quantum steering between two indirectly coupled microwave cavity modes within a hybrid cavity magnonic system. The system consists of two microwave cavities individually coupled to a common YIG sphere driven by a two-tone Floquet field, while the output field of the second microwave cavity is fed back into the input port of the first microwave cavity via a coherent feedback loop. Floquet driving can effectively generate two interactions between magnons and photons. Magnons with higher dissipation can serve as a cooling channel for the two cavity modes. Optimal quantum correlations between the cavity modes can be achieved when the competition between these two interactions reaches equilibrium. Subsequently, a comparative analysis is performed on the evolution of quantum correlation with and without coherent feedback, revealing that the presence of a coherent feedback loop in the system not only significantly enhances entanglement and steering but also induces inherent asymmetry in quantum steering regardless of the decay rates within subsystems. Moreover, under the influence of the coherent feedback loop, the enhanced quantum correlations exhibit increased robustness against rising environmental temperatures. This work significantly expands the validity of implementation and provides a promising avenue for the preparation of stable quantum correlations.

Abstract Image

具有浮凸场和相干反馈的腔体磁子系统中的静态量子纠缠和非对称转向
本文提出了一种在混合腔体磁子系统中制备两个间接耦合微波腔体模式之间的量子纠缠和量子转向的方案。该系统由两个微波腔组成,分别耦合到一个由双音浮凸场驱动的共用 YIG 球上,而第二个微波腔的输出场则通过一个相干反馈回路反馈到第一个微波腔的输入端口。Floquet 驱动能有效地在磁子和光子之间产生两种相互作用。耗散度较高的磁子可以作为两种空腔模式的冷却通道。当这两种相互作用之间的竞争达到平衡时,空腔模式之间就能实现最佳量子相关性。随后,我们对有相干反馈和无相干反馈时的量子相关性演化进行了对比分析,发现系统中相干反馈回路的存在不仅能显著增强纠缠和转向,而且还能诱导量子转向的内在不对称性,而与子系统内的衰变率无关。此外,在相干反馈环路的影响下,增强的量子相关性在环境温度不断升高的情况下表现出更强的鲁棒性。这项工作大大扩展了实施的有效性,并为制备稳定的量子相关性提供了一条前景广阔的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.90
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0.00%
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