通过压缩驱动器的宏观远距离磁振子模纠缠

Kamran Ullah, Muhammad Tahir Naseem, Ozgur E. Mustecaplioglu
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引用次数: 0

摘要

量子系统阵列中鲁棒纠缠的产生是实现高效量子信息处理的一个关键方面。最近,量子磁振学领域作为一个有前途的平台在这个方向上取得了显著的进展。在我们提出的方案中,我们利用一维耦合腔阵列,每个腔容纳一个通过磁偶极子相互作用耦合到腔模式的单铁石榴石(YIG)球体。为了诱导ig之间的纠缠,我们采用了压缩真空驱动,提供了必要的非线性。我们的研究结果证明了在整个阵列中远程磁振子模式之间成功地产生了二部和三部纠缠,所有这些都是通过单个控制驱动器实现的。此外,磁振子模式之间的稳态纠缠对磁振子耗散率和环境温度具有鲁棒性。我们的研究结果可能在量子信息处理和量子通信系统中找到应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Macroscopic distant magnon modes entanglement via a squeezed drive
The generation of robust entanglement in quantum system arrays is a crucial aspect of realizing efficient quantum information processing. Recently, the field of quantum magnonics has garnered significant attention as a promising platform for advancing in this direction. In our proposed scheme, we utilize a one-dimensional array of coupled cavities, with each cavity housing a single yttrium iron garnet (YIG) sphere coupled to the cavity mode through magnetic dipole interaction. To induce entanglement between YIGs, we employ a squeezed vacuum drive, providing the necessary nonlinearity. Our results demonstrate the successful generation of bipartite and tripartite entanglement between distant magnon modes across the entire array, all achieved through a single control drive. Furthermore, the steady-state entanglement between magnon modes is robust against magnon dissipation rates and environment temperature. Our results may find applications of cavity-magnon arrays in quantum information processing and quantum communication systems.
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