论文标题

与Gottesman-Kitaev-Preskill Qubits的全光距离量子通信

All-Optical Long-Distance Quantum Communication with Gottesman-Kitaev-Preskill qubits

论文作者

Fukui, Kosuke, Alexander, Rafael N., van Loock, Peter

论文摘要

量子中继器是实现长距离量子通信的有前途的平台,因此可以形成安全的量子互联网,可扩展的量子网络或分布式量子计算机的骨干。在单一或多光子状态中编码信息的中继协议受传输损失和实施纠缠大门或铃铛测量的成本的限制。在这项工作中,我们考虑使用Gottesman-Kitaev-Preskill(GKP)Qubits实施量子中继器协议。这些量子位是量子中继器协议的自然元素,因为它们允许确定性高斯纠缠操作和铃铛测量,可以在室温下实施。 GKP编码还能够纠正小排量错误。以额外的高斯噪声成本,可以通过应用相敏感的放大器将光子损耗转换为随机位移误差通道。在这里,我们表明,通过使用在测量数据的后处理中应用的相敏化放大,可以在双向中继器协议中实现类似的转换,从而导致每个(足够短)中继器段的总体高斯噪声减少。我们还调查了将GKP代码与更高级别的Qubit代码相连的同时,同时利用模拟综合征数据,选择后和路径选择技术来提高通信速率。我们计算了安全的密钥速率,并发现GKP中继器可以在使用量子量的量子量较少的同时,基于光子量子的方法获得比较性能。

Quantum repeaters are a promising platform for realizing long-distance quantum communication and thus could form the backbone of a secure quantum internet, a scalable quantum network, or a distributed quantum computer. Repeater protocols that encode information in single- or multi-photon states are limited by transmission losses and the cost of implementing entangling gates or Bell measurements. In this work, we consider implementing a quantum repeater protocol using Gottesman-Kitaev-Preskill (GKP) qubits. These qubits are natural elements for quantum repeater protocols, because they allow for deterministic Gaussian entangling operations and Bell measurements, which can be implemented at room temperature. The GKP encoding is also capable of correcting small displacement errors. At the cost of additional Gaussian noise, photon loss can be converted into a random displacement error channel by applying a phase-insensitive amplifier. Here we show that a similar conversion can be achieved in two-way repeater protocols by using phase-sensitive amplification applied in the post-processing of the measurement data, resulting in less overall Gaussian noise per (sufficiently short) repeater segment. We also investigate concatenating the GKP code with higher level qubit codes while leveraging analog syndrome data, post-selection, and path-selection techniques to boost the rate of communication. We compute the secure key rates and find that GKP repeaters can achieve a comparative performance relative to methods based on photonic qubits while using orders-of-magnitude fewer qubits.

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