物理
量子密钥分配
光子
窃听
量子密码学
量子信道
极化(电化学)
光的轨道角动量
光学
角动量
量子信息
量子信息科学
编码(内存)
量子
量子力学
计算机科学
量子纠缠
总角动量
计算机网络
化学
物理化学
人工智能
作者
Mohammad Mirhosseini,Omar S. Magaña‐Loaiza,Malcolm N. O’Sullivan,Brandon Rodenburg,Mehul Malik,Martin P. J. Lavery,Miles J. Padgett,Daniel J. Gauthier,Robert W. Boyd
标识
DOI:10.1088/1367-2630/17/3/033033
摘要
Quantum key distribution (QKD) systems often rely on polarization of light for encoding, thus limiting the amount of information that can be sent per photon and placing tight bounds on the error rates that such a system can tolerate. Here we describe a proof-of-principle experiment that indicates the feasibility of high-dimensional QKD based on the transverse structure of the light field allowing for the transfer of more than 1 bit per photon. Our implementation uses the orbital angular momentum (OAM) of photons and the corresponding mutually unbiased basis of angular position (ANG). Our experiment uses a digital micro-mirror device for the rapid generation of OAM and ANG modes at 4 kHz, and a mode sorter capable of sorting single photons based on their OAM and ANG content with a separation efficiency of 93%. Through the use of a seven-dimensional alphabet encoded in the OAM and ANG bases, we achieve a channel capacity of 2.05 bits per sifted photon. Our experiment demonstrates that, in addition to having an increased information capacity, multilevel QKD systems based on spatial-mode encoding can be more resilient against intercept-resend eavesdropping attacks.
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