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传播压缩微波中的有限时间量子纠缠

Finite-time quantum entanglement in propagating squeezed microwaves.

作者信息

Fedorov K G, Pogorzalek S, Las Heras U, Sanz M, Yard P, Eder P, Fischer M, Goetz J, Xie E, Inomata K, Nakamura Y, Di Candia R, Solano E, Marx A, Deppe F, Gross R

机构信息

Walther-Meißner-Institut, Bayerische Akademie der Wissenschaften, D-85748, Garching, Germany.

Physik-Department, Technische Universität München, D-85748, Garching, Germany.

出版信息

Sci Rep. 2018 Apr 23;8(1):6416. doi: 10.1038/s41598-018-24742-z.

Abstract

Two-mode squeezing is a fascinating example of quantum entanglement manifested in cross-correlations of non-commuting observables between two subsystems. At the same time, these subsystems themselves may contain no quantum signatures in their self-correlations. These properties make two-mode squeezed (TMS) states an ideal resource for applications in quantum communication. Here, we generate propagating microwave TMS states by a beam splitter distributing single mode squeezing emitted from distinct Josephson parametric amplifiers along two output paths. We experimentally study the fundamental dephasing process of quantum cross-correlations in continuous-variable propagating TMS microwave states and accurately describe it with a theory model. In this way, we gain the insight into finite-time entanglement limits and predict high fidelities for benchmark quantum communication protocols such as remote state preparation and quantum teleportation.

摘要

双模压缩是量子纠缠的一个引人入胜的例子,体现在两个子系统之间非对易可观测量的交叉关联中。与此同时,这些子系统自身的自关联中可能不包含量子特征。这些特性使双模压缩(TMS)态成为量子通信应用的理想资源。在这里,我们通过一个分束器生成传播的微波TMS态,该分束器将从不同约瑟夫森参量放大器发射的单模压缩沿着两条输出路径进行分配。我们通过实验研究了连续变量传播TMS微波态中量子交叉关联的基本退相过程,并用一个理论模型对其进行了精确描述。通过这种方式,我们深入了解了有限时间纠缠极限,并预测了诸如远程态制备和量子隐形传态等基准量子通信协议的高保真度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f79b/5913304/3f9b84d4807f/41598_2018_24742_Fig1_HTML.jpg

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