论文标题
用于量子网络的现场删除量子存储器
Field-deployable Quantum Memory for Quantum Networking
论文作者
论文摘要
高性能量子记忆是调节量子网络中时间事件的重要组成部分。作为量子复制者的组成部分,它们具有支持纤维损失物理限制的纠缠分布的潜力。这将启用关键应用程序,例如量子密钥分布,网络增强量子传感和分布式量子计算。在这里,我们提出了设计的量子记忆,以满足现实世界的部署和扩展挑战。记忆技术利用温暖的rubidium蒸气作为存储介质,并在室温下运行,而无需真空和/或低温支撑。我们在存储时间为160 $μs$的单光子级量子内存操作时,证明了高保真检索(95 \%)和低操作错误$(10^{ - 2})$的性能规格。通过抑制原子扩散,我们进一步显示了最多1 ms的存储时间(经典光线)。该设备被安装在带有标准2U机架标准尺寸的外壳中,并且可以在嘈杂的环境中在日常尺度上进行稳健操作。该结果标志着在该领域实现量子网络的重要一步。
High-performance quantum memories are an essential component for regulating temporal events in quantum networks. As a component in quantum-repeaters, they have the potential to support the distribution of entanglement beyond the physical limitations of fiber loss. This will enable key applications such as quantum key distribution, network-enhanced quantum sensing, and distributed quantum computing. Here, we present a quantum memory engineered to meet real-world deployment and scaling challenges. The memory technology utilizes a warm rubidium vapor as the storage medium, and operates at room temperature, without the need for vacuum- and/or cryogenic- support. We demonstrate performance specifications of high-fidelity retrieval (95\%) and low operation error $(10^{-2})$ at a storage time of 160 $μs$ for single-photon level quantum memory operations. We further show a substantially improved storage time (with classical-level light) of up to 1 ms by suppressing atomic diffusions. The device is housed in an enclosure with a standard 2U rackmount form factor, and can robustly operate on a day scale in a noisy environment. This result marks an important step toward implementing quantum networks in the field.