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片上生成单光子圆偏振单模涡旋光束。

On-chip generation of single-photon circularly polarized single-mode vortex beams.

作者信息

Liu Xujing, Kan Yinhui, Kumar Shailesh, Komisar Danylo, Zhao Changying, Bozhevolnyi Sergey I

机构信息

Institute of Engineering Thermophysics, Shanghai Jiao Tong University, Shanghai 200240, China.

Centre for Nano Optics, University of Southern Denmark, DK-5230 Odense M, Denmark.

出版信息

Sci Adv. 2023 Aug 9;9(32):eadh0725. doi: 10.1126/sciadv.adh0725.

Abstract

Generation of single photons carrying spin and orbital angular momenta (SAM and OAM) opens enticing perspectives for exploiting multiple degrees of freedom for high-dimensional quantum systems. However, on-chip generation of single photons encoded with single-mode SAM-OAM states has been a major challenge. Here, by using carefully designed anisotropic nanodimers fabricated atop a substrate, supporting surface plasmon polariton (SPP) propagation, and accurately positioned around a quantum emitter (QE), we enable nonradiative QE-SPP coupling and the SPP outcoupling into free-space propagating radiation featuring the designed SAM and OAM. We demonstrate on-chip room-temperature generation of well-collimated (divergence < 7.5°) circularly polarized (chirality > 0.97) single-mode vortex beams with different topological charges (𝓁 = 0, 1, and 2) and high single-photon purity, (0) < 0.15. The developed approach can straightforwardly be extended to produce multiple, differently polarized, single-mode single-photon radiation channels and enable thereby realization of high-dimensional quantum sources for advanced quantum photonic technologies.

摘要

携带自旋和轨道角动量(SAM和OAM)的单光子的产生为利用高维量子系统的多个自由度开辟了诱人的前景。然而,单模SAM-OAM态编码的单光子的片上产生一直是一个重大挑战。在这里,通过使用精心设计的各向异性纳米二聚体,这些纳米二聚体制造在支持表面等离激元极化激元(SPP)传播的衬底上,并精确地定位在量子发射器(QE)周围,我们实现了非辐射QE-SPP耦合以及SPP向外耦合到具有设计的SAM和OAM的自由空间传播辐射中。我们展示了在片上室温下产生具有不同拓扑电荷(𝓁 = 0、1和2)且单光子纯度高((0) < 0.15)的准直良好(发散 < 7.5°)的圆偏振(手性 > 0.97)单模涡旋光束。所开发的方法可以直接扩展以产生多个不同偏振的单模单光子辐射通道,从而实现用于先进量子光子技术的高维量子源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bc65/10411890/05bc6dd3025d/sciadv.adh0725-f1.jpg

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