论文标题
带有集成硅光子学的资源有效量子键分布
Resource-efficient quantum key distribution with integrated silicon photonics
论文作者
论文摘要
集成光子学为量子密钥分布(QKD)系统提供了一个有前途的平台,该系统就微型化,鲁棒性和可扩展性提供了。已经报道了基于集成光子学的巨大QKD作品。尽管如此,大多数当前基于芯片的QKD实现都需要额外的外芯片硬件来解码量子状态或执行辅助任务,例如时间同步和极化基础跟踪。在这里,我们报告了带有基于硅的编码器和解码器的基于资源有效芯片的BB84 QKD的演示。在我们的方案中,依赖于芯片设备生成的量子状态的准备和测量,实现了时间同步和两极分化补偿,因此不需要其他硬件。实验测试表明,我们的方案高度稳定,在6小时连续运行中,较低的内在QBER为$ 0.50 \ pm 0.02 \%$。此外,在高达150公里的商业光纤通道上,该系统可以以866 bps的速度实现安全的钥匙分布。我们的演示为低成本,晶圆尺度制造的QKD系统铺平了道路。
Integrated photonics provides a promising platform for quantum key distribution (QKD) system in terms of miniaturization, robustness and scalability. Tremendous QKD works based on integrated photonics have been reported. Nonetheless, most current chip-based QKD implementations require additional off-chip hardware to demodulate quantum states or perform auxiliary tasks such as time synchronization and polarization basis tracking. Here, we report a demonstration of resource-efficient chip-based BB84 QKD with a silicon-based encoder and decoder. In our scheme, the time synchronization and polarization compensation are implemented relying on the preparation and measurement of the quantum states generated by on-chip devices, thus no need additional hardware. The experimental tests show that our scheme is highly stable with a low intrinsic QBER of $0.50\pm 0.02\%$ in a 6-h continuous run. Furthermore, over a commercial fiber channel up to 150 km, the system enables realizing secure key distribution at a rate of 866 bps. Our demonstration paves the way for low-cost, wafer-scale manufactured QKD system.