Khodadad Kashi Anahita, Caspani Lucia, Kues Michael
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.
Phys Rev Lett. 2023 Dec 8;131(23):233601. doi: 10.1103/PhysRevLett.131.233601.
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.
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。