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利用平面光学技术设计量子光源。

Engineering Quantum Light Sources with Flat Optics.

作者信息

Ma Jinyong, Zhang Jihua, Horder Jake, Sukhorukov Andrey A, Toth Milos, Neshev Dragomir N, Aharonovich Igor

机构信息

ARC Centre of Excellence for Transformative Meta-Optical Systems (TMOS), Department of Electronic Materials Engineering, Research School of Physics, Australian National University, Canberra, 2600, Australia.

Songshan Lake Materials Laboratory, Dongguan, Guangdong, 523808, P. R. China.

出版信息

Adv Mater. 2024 Jun;36(23):e2313589. doi: 10.1002/adma.202313589. Epub 2024 Apr 17.

Abstract

Quantum light sources are essential building blocks for many quantum technologies, enabling secure communication, powerful computing, and precise sensing and imaging. Recent advancements have witnessed a significant shift toward the utilization of "flat" optics with thickness at subwavelength scales for the development of quantum light sources. This approach offers notable advantages over conventional bulky counterparts, including compactness, scalability, and improved efficiency, along with added functionalities. This review focuses on the recent advances in leveraging flat optics to generate quantum light sources. Specifically, the generation of entangled photon pairs through spontaneous parametric down-conversion in nonlinear metasurfaces, and single photon emission from quantum emitters including quantum dots and color centers in 3D and 2D materials are explored. The review covers theoretical principles, fabrication techniques, and properties of these sources, with particular emphasis on the enhanced generation and engineering of quantum light sources using optical resonances supported by nanostructures. The diverse application range of these sources is discussed and the current challenges and perspectives in the field are highlighted.

摘要

量子光源是许多量子技术的基本组成部分,可实现安全通信、强大计算以及精确传感与成像。最近的进展见证了在量子光源开发中朝着利用亚波长尺度厚度的“平面”光学器件的重大转变。这种方法相较于传统的笨重光学器件具有显著优势,包括紧凑性、可扩展性、更高的效率以及额外的功能。本综述聚焦于利用平面光学器件来产生量子光源的最新进展。具体而言,探讨了通过非线性超表面中的自发参量下转换产生纠缠光子对,以及包括三维和二维材料中的量子点和色心等量子发射器的单光子发射。该综述涵盖了这些光源的理论原理、制造技术和特性,特别强调了利用纳米结构支持的光学共振来增强量子光源的产生和工程设计。讨论了这些光源的广泛应用范围,并突出了该领域当前的挑战和前景。

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