A Sixteen‐user Time‐bin Entangled Quantum Communication Network With Fully Connected Topology

Author:

Huang Yiwen1,Qi Zhantong1,Yang Yilin1,Zhang Yuting1,Li Yuanhua12,Zheng Yuanlin13,Chen Xianfeng134ORCID

Affiliation:

1. State Key Laboratory of Advanced Optical Communication Systems and Networks School of Physics and Astronomy Shanghai Jiao Tong University Shanghai 200240 China

2. Department of Physics Shanghai Key Laboratory of Materials Protection and Advanced Materials in Electric Power Shanghai University of Electric Power Shanghai 200090 China

3. Shanghai Research Center for Quantum Sciences Shanghai 201315 China

4. Collaborative Innovation Center of Light Manipulation and Applications Shandong Normal University Jinan 250358 China

Abstract

AbstractQuantum key distribution (QKD) promises unconditionally information‐theoretic secure communication guaranteed by the laws of physics and has become one of the most crucial candidates in future security aspects. Developing a large‐scale network with a scalable and integrated scheme is of great significance for expanding the advantages of QKD protocols among multiple users. Here, a sixteen‐user fully connected quantum network by using a novel time‐bin entangled source implemented in the integrated multi‐channel periodically poled lithium niobate waveguides is proposed. Based on this entangled source, the quantum processor prepares 120 entangled photon pairs to allocate 15 links to each user by utilizing dense wavelength division multiplexing technology. To enable the users’ communication with each other simultaneously, a phase‐compensated Mach‐Zehnder Interferometer based on a Fourier‐transform setup to control the relative phase of the interferometer for all the involved wavelength channels is developed. The experimental results show that the network can support sixteen users for long‐distance communication with each other simultaneously. The novel scheme of time‐bin entangled sources paves an efficient way for implementing large‐scale quantum resources in a compact integrated platform, and the time‐bin entangled network promises a new potential for constructing large‐scale and extensible quantum networks with an integrated photonic architecture.

Funder

National Natural Science Foundation of China

Shanghai Jiao Tong University

Publisher

Wiley

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