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High-fidelity entanglement swapping and generation of three-qubit GHZ state using asynchronous telecom photon pair sources

机译:使用异步电信光子对源进行高保真纠缠交换并生成三比特GHZ状态

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We experimentally demonstrate a high-fidelity entanglement swapping and a generation of the Greenberger-Horne-Zeilinger (GHZ) state using polarization-entangled photon pairs at telecommunication wavelength produced by spontaneous parametric down conversion with continuous-wave pump light. While spatially separated sources asynchronously emit photon pairs, the time-resolved photon detection guarantees the temporal indistinguishability of photons without active timing synchronizations of pump lasers and/or adjustment of optical paths. In the experiment, photons are sufficiently narrowed by fiber-based Bragg gratings with the central wavelengths of 1541?nm & 1580?nm, and detected by superconducting nanowire single-photon detectors with low timing jitters. The observed fidelities of the final states for entanglement swapping and the generated three-qubit state were 0.84?±?0.04 and 0.70?±?0.05, respectively.
机译:我们通过实验证明了高保真度纠缠交换和格林伯格-霍恩-策林格(GHZ)态的产生,该态是通过在连续波泵浦光下自发进行参量下转换而在电信波长产生的偏振纠缠光子对。在空间上分开的源异步发射光子对时,时间分辨光子检测可确保光子在时间上无法区分,而无需泵浦激光器的主动定时同步和/或光路调整。在实验中,光子被中心波长为1541?nm和1580?nm的基于光纤的布拉格光栅充分收窄,并通过具有低定时抖动的超导纳米线单光子探测器进行检测。纠缠交换的最终状态和生成的三比特状态的保真度分别为0.84?±?0.04和0.70?±?0.05。

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