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Journal article · Preprint article

High-dimensional quantum key distribution based on multicore fiber using silicon photonic integrated circuits

From

Department of Photonics Engineering, Technical University of Denmark1

Nanophotonic Devices, Department of Photonics Engineering, Technical University of Denmark2

Ultra-fast Optical Communication, Department of Photonics Engineering, Technical University of Denmark3

Centre of Excellence for Silicon Photonics for Optical Communications, Centers, Technical University of Denmark4

Sun Yat-Sen University5

Fiber Optics, Devices and Non-linear Effects, Department of Photonics Engineering, Technical University of Denmark6

Quantum key distribution provides an efficient means to exchange information in an unconditionally secure way. Historically, quantum key distribution protocols have been based on binary signal formats, such as two polarization states, and the transmitted information efficiency of the quantum key is intrinsically limited to 1 bit/photon.

Here we propose and experimentally demonstrate, for the first time, a high-dimensional quantum key distribution protocol based on space division multiplexing in multicore fiber using silicon photonic integrated lightwave circuits. We successfully realized three mutually unbiased bases in a four-dimensional Hilbert space, and achieved low and stable quantum bit error rate well below both the coherent attack and individual attack limits.

Compared to previous demonstrations, the use of a multicore fiber in our protocol provides a much more efficient way to create high-dimensional quantum states, and enables breaking the information efficiency limit of traditional quantum key distribution protocols. In addition, the silicon photonic circuits used in our work integrate variable optical attenuators, highly efficient multicore fiber couplers, and Mach-Zehnder interferometers, enabling manipulating high-dimensional quantum states in a compact and stable manner.

Our demonstration paves the way to utilize state-of-the-art multicore fibers for noise tolerance high-dimensional quantum key distribution, and boost silicon photonics for high information efficiency quantum communications.

Language: English
Publisher: Nature Publishing Group UK
Year: 2017
ISSN: 20566387
Types: Journal article and Preprint article
DOI: 10.1038/s41534-017-0026-2
ORCIDs: Ding, Yunhong , Bacco, Davide , Dalgaard, Kjeld , Rottwitt, Karsten and Oxenløwe, Leif Katsuo

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