Department of Electrical Engineering, Yale University, New Haven, Connecticut 06511, USA.
Department of Electrical and Computer Engineering, Duke University, Durham, North Carolina 27708, USA.
Phys Rev Lett. 2014 Jun 27;112(25):250501. doi: 10.1103/PhysRevLett.112.250501.
Quantum repeaters (QRs) provide a way of enabling long distance quantum communication by establishing entangled qubits between remote locations. In this Letter, we investigate a new approach to QRs in which quantum information can be faithfully transmitted via a noisy channel without the use of long distance teleportation, thus eliminating the need to establish remote entangled links. Our approach makes use of small encoding blocks to fault-tolerantly correct both operational and photon loss errors. We describe a way to optimize the resource requirement for these QRs with the aim of the generation of a secure key. Numerical calculations indicate that the number of quantum memory bits at each repeater station required for the generation of one secure key has favorable polylogarithmic scaling with the distance across which the communication is desired.
量子中继器 (QR) 通过在远程位置之间建立纠缠量子比特,提供了一种实现长距离量子通信的方法。在这封信中,我们研究了一种新的 QR 方法,其中量子信息可以通过嘈杂的信道忠实地传输,而无需使用长距离的量子隐形传态,从而消除了建立远程纠缠链路的需要。我们的方法利用小的编码块来容错地纠正操作和光子丢失错误。我们描述了一种优化这些 QR 资源需求的方法,目的是生成安全密钥。数值计算表明,为生成一个安全密钥而在每个中继站所需的量子存储位数量与期望的通信距离呈有利的多项式缩放关系。