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Qubit entanglement between ring-resonator photon-pair sources on a silicon chip

机译:硅芯片上环形谐振器光子对源之间的量子位纠缠

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摘要

Entanglement—one of the most delicate phenomena in nature—is an essential resource for quantum information applications. Scalable photonic quantum devices must generate and control qubit entanglement on-chip, where quantum information is naturally encoded in photon path. Here we report a silicon photonic chip that uses resonant-enhanced photon-pair sources, spectral demultiplexers and reconfigurable optics to generate a path-entangled two-qubit state and analyse its entanglement. We show that ring-resonator-based spontaneous four-wave mixing photon-pair sources can be made highly indistinguishable and that their spectral correlations are small. We use on-chip frequency demultiplexers and reconfigurable optics to perform both quantum state tomography and the strict Bell-CHSH test, both of which confirm a high level of on-chip entanglement. This work demonstrates the integration of high-performance components that will be essential for building quantum devices and systems to harness photonic entanglement on the large scale.
机译:纠缠是自然界中最微妙的现象之一,是量子信息应用必不可少的资源。可扩展的光子量子设备必须在芯片上生成和控制量子位纠缠,量子信息在光子路径中自然编码。在这里,我们报告一种硅光子芯片,该芯片使用共振增强的光子对源,光谱解复用器和可重新配置的光学器件来生成路径纠缠的两个量子位状态并分析其纠缠。我们表明,基于环形谐振器的自发四波混合光子对源可以高度区分,并且它们的光谱相关性很小。我们使用片上频率多路分解器和可重构光学器件来执行量子状态层析成像和严格的Bell-CHSH测试,这两者都证实了高水平的片上纠缠度。这项工作演示了高性能组件的集成,这对于构建量子设备和系统以大规模利用光子纠缠至关重要。

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