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Measurement of Quantum Interference in a Silicon Ring Resonator Photon Source

机译:硅环谐振器光子源中量子干扰的测量

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摘要

Silicon photonic chips have the potential to realize complex integrated quantum information processing circuits, including photon sources, qubit manipulation, and integrated single-photon detectors. Here, we present the key aspects of preparing and testing a silicon photonic quantum chip with an integrated photon source and two-photon interferometer. The most important aspect of an integrated quantum circuit is minimizing loss so that all of the generated photons are detected with the highest possible fidelity. Here, we describe how to perform low-loss edge coupling by using an ultra-high numerical aperture fiber to closely match the mode of the silicon waveguides. By using an optimized fusion splicing recipe, the UHNA fiber is seamlessly interfaced with a standard single-mode fiber. This low-loss coupling allows the measurement of high-fidelity photon production in an integrated silicon ring resonator and the subsequent two-photon interference of the produced photons in a closely integrated Mach-Zehnder interferometer. This paper describes the essential procedures for the preparation and characterization of high-performance and scalable silicon quantum photonic circuits.
机译:硅光子芯片有潜力实现复杂的集成量子信息处理电路,包括光子源,量子位操纵和集成单光子检测器。在这里,我们介绍了准备和测试具有集成光子源和双光子干涉仪的硅光子量子芯片的关键方面。集成量子电路最重要的方面是使损耗最小化,以便以最高可能的保真度检测所有产生的光子。在这里,我们描述如何通过使用超高数值孔径光纤来紧密匹配硅波导的模式来执行低损耗边缘耦合。通过使用优化的熔接配方,UHNA光纤可与标准单模光纤无缝连接。这种低损耗耦合可以测量集成硅环谐振器中高保真度光子的产生,以及随后在紧密集成的Mach-Zehnder干涉仪中产生的光子随后产生的两个光子干涉。本文介绍了高性能和可扩展的硅量子光子电路的制备和表征的基本程序。

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