Zhu Tian-Xiang, Liu Xiao, Zhou Zong-Quan, Li Chuan-Feng
CAS Key Laboratory of Quantum Information, University of Science and Technology of China, Hefei 230026, China.
Anhui Province Key Laboratory of Quantum Network, University of Science and Technology of China, Hefei 230026, China.
Nanophotonics. 2025 Jan 9;14(11):1975-1992. doi: 10.1515/nanoph-2024-0487. eCollection 2025 Jun.
Quantum networks, capable of transmitting arbitrary quantum states, provide a foundation for a wide range of quantum applications, including distributed quantum computing, distributed quantum sensing, and quantum communication. Photons are the natural carrier of information in quantum networks, but the exponential loss of optical fiber channels prevents the construction of large-scale quantum networks. A potential solution is implementing quantum repeaters based on quantum memories, which can efficiently establish long-distance entanglement from short-distance entanglement. In the past decades, intense efforts have been devoted to constructing large-scale quantum networks based on various atomic quantum memories. In this Perspective, we present a concise overview of current advancements in remote quantum networks, elucidate the imminent challenges that must be addressed, and discuss the future directions.
能够传输任意量子态的量子网络为广泛的量子应用奠定了基础,包括分布式量子计算、分布式量子传感和量子通信。光子是量子网络中信息的天然载体,但光纤信道的指数级损耗阻碍了大规模量子网络的构建。一种潜在的解决方案是基于量子存储器实现量子中继器,它可以有效地从短距离纠缠建立长距离纠缠。在过去几十年里,人们致力于基于各种原子量子存储器构建大规模量子网络。在这篇展望文章中,我们简要概述了远程量子网络的当前进展,阐明了必须解决的紧迫挑战,并讨论了未来的发展方向。