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Two-photon interference at telecom wavelengths for time-bin-encoded single photons from quantum-dot spin qubits

机译:量子点自旋量子比特对时间段编码的单光子在电信波长处的双光子干扰

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摘要

Practical quantum communication between remote quantum memories rely on single photons at telecom wavelengths. Although spin-photon entanglement has been demonstrated in atomic and solid-state qubit systems, the produced single photons at short wavelengths and with polarization encoding are not suitable for long-distance communication, because they suffer from high propagation loss and depolarization in optical fibres. Establishing entanglement between remote quantum nodes would further require the photons generated from separate nodes to be indistinguishable. Here, we report the observation of correlations between a quantum-dot spin and a telecom single photon across a 2-km fibre channel based on time-bin encoding and background-free frequency downconversion. The downconverted photon at telecom wavelengths exhibits two-photon interference with another photon from an independent source, achieving a mean wavepacket overlap of greater than 0.89 despite their original wavelength mismatch (900 and 911 nm). The quantum-networking operations that we demonstrate will enable practical communication between solid-state spin qubits across long distances.
机译:远程量子存储器之间的实用量子通信依赖于电信波长的单个光子。尽管在原子和固态量子位系统中已经证明了自旋光子的纠缠,但是产生的短波长单光子和偏振编码的单光子不适合长距离通信,因为它们遭受光纤中的高传播损耗和去极化的困扰。在远程量子节点之间建立纠缠将进一步要求从单独的节点生成的光子不可区分。在这里,我们报告了基于时分编码和无背景频率下变频的跨2公里光纤通道的量子点自旋与电信单光子之间的相关性观察。在电信波长下变频的光子表现出与来自独立来源的另一个光子的双光子干扰,尽管原始波长不匹配(900和911 nm),但平均波包重叠仍大于0.89。我们演示的量子网络操作将使固态自旋量子位之间的长距离通信成为可能。

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