通过挤压真空场在混合腔电子-光学-机械系统中产生静态纠缠和单向转向

IF 2.2 3区 物理与天体物理 Q1 PHYSICS, MATHEMATICAL Quantum Information Processing Pub Date : 2024-05-29 DOI:10.1007/s11128-024-04408-8
Song-Lin Yang, Xin Wang, Ang Li, Jian-Song Zhang, Guang-Lin Chen, Wen-Xue Zhong
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引用次数: 0

摘要

我们提出了一种借助挤压真空场在混合腔电子-光学-机械系统中产生稳健的双方纠缠、真正的三方纠缠和单向转向的方案。该系统由一个光腔、一个由氮化硅薄膜形成的机械谐振器和两个超导微波电路组成。机械谐振器同时与光腔和两个超导电路耦合。我们发现,不同模式之间存在稳态纠缠,空腔模式和两个微波模式之间存在真正的三方纠缠,这种纠缠对机械模式的热波动具有稳健性。此外,通过选择适当的挤压参数,还可以在两个微波模式之间产生稳健的单向转向。我们的方案可能会在量子信息处理和通信领域得到潜在应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Generating stationary entanglement and one-way steering in a hybrid cavity electro-optomechanical system via a squeezed vacuum field

We propose a scheme to generate robust bipartite entanglement, genuine tripartite entanglement, and one-way steering in a hybrid cavity electro-optomechanical system with the help of a squeezed vacuum field. The system consists of an optical cavity, a mechanical resonator formed by a thin silicon nitride membrane, and two superconducting microwave circuits. The mechanical resonator is coupled to the optical cavity and two superconducting circuits simultaneously. We find there is steady-state entanglement between different modes and genuine tripartite entanglement among the cavity mode and two microwave modes which are robust against the thermal fluctuations of the mechanical mode. In addition, the robust one-way steering between two microwave modes can be generated by selecting appropriate squeezing parameter. Our scheme may have potential applications in quantum information processing and communication.

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来源期刊
Quantum Information Processing
Quantum Information Processing 物理-物理:数学物理
CiteScore
4.10
自引率
20.00%
发文量
337
审稿时长
4.5 months
期刊介绍: Quantum Information Processing is a high-impact, international journal publishing cutting-edge experimental and theoretical research in all areas of Quantum Information Science. Topics of interest include quantum cryptography and communications, entanglement and discord, quantum algorithms, quantum error correction and fault tolerance, quantum computer science, quantum imaging and sensing, and experimental platforms for quantum information. Quantum Information Processing supports and inspires research by providing a comprehensive peer review process, and broadcasting high quality results in a range of formats. These include original papers, letters, broadly focused perspectives, comprehensive review articles, book reviews, and special topical issues. The journal is particularly interested in papers detailing and demonstrating quantum information protocols for cryptography, communications, computation, and sensing.
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