Islam Nurul T, Lim Charles Ci Wen, Cahall Clinton, Kim Jungsang, Gauthier Daniel J
Department of Physics and the Fitzpatrick Institute for Photonics, Duke University, Durham, NC 27708, USA.
Computational Sciences and Engineering Division, Oak Ridge National Laboratory, Oak Ridge, TN 37831-6418, USA.
Sci Adv. 2017 Nov 24;3(11):e1701491. doi: 10.1126/sciadv.1701491. eCollection 2017 Nov.
The security of conventional cryptography systems is threatened in the forthcoming era of quantum computers. Quantum key distribution (QKD) features fundamentally proven security and offers a promising option for quantum-proof cryptography solution. Although prototype QKD systems over optical fiber have been demonstrated over the years, the key generation rates remain several orders of magnitude lower than current classical communication systems. In an effort toward a commercially viable QKD system with improved key generation rates, we developed a discrete-variable QKD system based on time-bin quantum photonic states that can generate provably secure cryptographic keys at megabit-per-second rates over metropolitan distances. We use high-dimensional quantum states that transmit more than one secret bit per received photon, alleviating detector saturation effects in the superconducting nanowire single-photon detectors used in our system that feature very high detection efficiency (of more than 70%) and low timing jitter (of less than 40 ps). Our system is constructed using commercial off-the-shelf components, and the adopted protocol can be readily extended to free-space quantum channels. The security analysis adopted to distill the keys ensures that the demonstrated protocol is robust against coherent attacks, finite-size effects, and a broad class of experimental imperfections identified in our system.
在即将到来的量子计算机时代,传统密码系统的安全性受到威胁。量子密钥分发(QKD)具有从根本上得到证明的安全性,并为抗量子密码解决方案提供了一个有前景的选择。尽管多年来已经展示了基于光纤的QKD原型系统,但密钥生成速率仍比当前的经典通信系统低几个数量级。为了努力实现具有更高密钥生成速率的商业可行QKD系统,我们开发了一种基于时间-bin量子光子态的离散变量QKD系统,该系统能够在城域距离上以每秒兆比特的速率生成可证明安全的加密密钥。我们使用高维量子态,每个接收到的光子可传输不止一个秘密比特,从而减轻了我们系统中使用的超导纳米线单光子探测器中的探测器饱和效应,这些探测器具有非常高的探测效率(超过70%)和低定时抖动(小于40皮秒)。我们的系统使用商用现货组件构建,并且所采用的协议可以很容易地扩展到自由空间量子信道。用于提取密钥的安全分析确保了所展示的协议对相干攻击、有限尺寸效应以及我们系统中识别出的一大类实验缺陷具有鲁棒性。