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预告单光子态与热场之间的光谱洪-欧-曼德尔效应:多光子污染与非经典性阈值

Spectral Hong-Ou-Mandel Effect between a Heralded Single-Photon State and a Thermal Field: Multiphoton Contamination and the Nonclassicality Threshold.

作者信息

Khodadad Kashi Anahita, Caspani Lucia, Kues Michael

机构信息

Institute of Photonics, Leibniz University Hannover, 30167 Hannover, Germany.

Cluster of Excellence PhoenixD (Photonics, Optics, Engineering-Innovation Across Disciplines), Leibniz University Hannover, 30167 Hannover, Germany.

出版信息

Phys Rev Lett. 2023 Dec 8;131(23):233601. doi: 10.1103/PhysRevLett.131.233601.

Abstract

The Hong-Ou-Mandel (HOM) effect is crucial for quantum information processing, and its visibility determines the system's quantum-classical characteristics. In an experimental and theoretical study of the spectral HOM effect between a thermal field and a heralded single-photon state, we demonstrate that the HOM visibility varies dependent on the relative photon statistics of the interacting fields. Our findings reveal that multiphoton components in a heralded state get engaged in quantum interference with a thermal field, resulting in improved visibilities at certain mean photon numbers. We derive a theoretical relationship for the HOM visibility as a function of the mean photon number of the thermal field and the thermal part of the heralded state. We show that the nonclassicality degree of a heralded state is reflected in its HOM visibility with a thermal field; our results establish a lower bound of 41.42% for the peak visibility, indicating the minimum assignable degree of nonclassicality to the heralded state. This research enhances our understanding of the HOM effect and its application to high-speed remote secret key sharing, addressing security concerns due to multiphoton contamination in heralded states.

摘要

洪-欧-曼德尔(HOM)效应对于量子信息处理至关重要,其可见度决定了系统的量子-经典特性。在对热场与预示单光子态之间的光谱HOM效应进行的实验和理论研究中,我们证明了HOM可见度会根据相互作用场的相对光子统计而变化。我们的研究结果表明,预示态中的多光子成分会与热场发生量子干涉,从而在某些平均光子数下提高可见度。我们推导出了HOM可见度与热场平均光子数以及预示态热部分之间的理论关系。我们表明,预示态的非经典程度通过其与热场的HOM可见度得以体现;我们的结果确定了峰值可见度的下限为41.42%,这表明预示态可分配的最小非经典程度。这项研究增进了我们对HOM效应的理解及其在高速远程秘密密钥共享中的应用,解决了预示态中多光子污染带来的安全问题。

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