22
collaborators
2019–2020
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
2 Posters
| Title | Conference | Co-authors |
|---|---|---|
| An upstream access network based on continuous-variable quantum key distribution | QCRYPT 2020 | Yundi Huang, Yichen Zhang, Tao Shen, Song Yu, Hong Guo |
Quantum key distribution (QKD) is designed to establish symmetric keys among two legitimate parties. Continuous variable (CV) QKD that uses the coherent states and homodyne detection can only apply the cost-effective telecommunication components[1]. The field test of CV-QKD has reached over 50 km[2], and under the laboratory conditions, experimental demonstration of over 200km has been reported [3], thus, has revealed great potentials in practical implementations. The access network that allows multitude end-users to connect to the nodal network is a necessary in the modern network infrastructure since it is suitable for general home-to-home scenarios. Quantum access network was first proposed [4] and demonstrated in field tests [5] for discrete variable QKD. Here, we report an upstream access network based on CV-QKD. In our experimental demonstrations, two transmitters Alice are deployed as optical network units that simultaneously send signals to the network, the receiver Bob is acted as the optical line terminal. The optical distribution network is located between the optical network units and the optical line terminal to couple the signals. The signals generated from each optical network unit are required to pass through a variable delay line to calibrate the arriving time at the optical distribution network before being transmitted. The signals are then simultaneously sent to the optical distribution network through fibers of 5.3 km and 12.3 km respectively. When the signals approach to the optical distribution network, dynamic polarization control modules are firstly applied in each path to pre-compensate the polarization. The signals are then coupled through a beamsplitter and forwarded to the optical line terminal. With a system repetition frequency of 2.5 MHz, we obtain the averaged secret key rates of 55 kbps and 22 kbps for Alice No. 1 and Alice No. 2 respectively. The total secret key rates has reached 77 kbps which suggests a higher network capacity. The excess noise is relatively stable, yet there are small fluctuations in the secret key rates. To one step further reduce the loss, the wavelength division multiplexing devices can be used at the optical distribution network. This is especially beneficial when the quantum signal has to co-propagate with classical data channels in the same fiber [6,7]. The upstream access network implementations can be easily extended to a higher repetition frequency system or to support more users. The demonstration experiments provide the possibility of building practical large-scale CV-QKD networks. This work is supported by the Key Program of National Natural Science Foundation of China under Grants No. 61531003, and the Fund of CETC under Grant No. 6141B08231115. References 1. C.Weedbrook, S. Pirandola, R. Garc´ıa-Patr´on, N. J. Cerf, T. C. Ralph, J. H. Shapiro and S. Lloyd, Gaussian quantum information, Rev. Mod. Phys. 84, 621 (2012). 2. Y. Zhang, Z. Li, Z. Chen, C. Weedbrook, Y. Zhao, X. Wang, Y. Huang, C. Xu, X. Zhang, Z. Wang, M. Li, X. Zhang, Z. Zheng, B. Chu, X. Gao, N. Meng,W. Cai, X.Wang, G.Wang, S. Yu and H. Guo, Continuous- variable QKD over 50 km commercial fiber, Quantum Sci. Technol. 4, 035006 (2019). 3. Y. Zhang, Z. Chen, S. Pirandola, X. Wang, C. Zhou, B. Chu, Y. Zhao, B. Xu, S. Yu and H. Guo, Long- distance continuous-variable quantum key distribution over 202.81 km fiber, arXiv:2001.02555 (2020). (Accepted by Phys. Rev. Lett.) 4. B. Fr¨ohlich, J. F. Dynes, M. Lucamarini, A. W. Sharpe, Z. Yuan and A. J. Shields, A quantum access network, Nature 501, 69-72 (2013). 5. B. K. Park, M. K. Woo, Y. S. Kim, Y. W. Cho, S. Moon and S. W. Han, User-independent optical path length compensation scheme with sub-nanosecond timing resolution for a 1* N quantum key distribution network system, Photon. Res. 8, 296 (2020). 6. T. A. Eriksson, T. Hirano, B. J. Puttnam, G. Rademacher, R. S. Lu´ıs, M. Fujiwara, R. Namiki, Y. Awaji, M. Takeoka, N. Wada and M. Sasaki, Wavelength division multiplexing of continuous variable quantum key distribution and 18.3 Tbit/s data channels, Commun. Phys. 2, 9 (2019). 7. B. Chu, Y. Zhang, Y. Zhao, Y. Xu, X. Chen, X. Wang and S. Yu, Crosstalk-induced impact of coexisting DWDM network on continuous-variable QKD, 16th International Conference on the Design of Reliable Communication Networks DRCN, Milano, Italy, pp. 1-5 (2020). |
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| Continuous-variable QKD network in Qingdao | QCRYPT 2019 | Yichen Zhang, Ziyang Chen, Bingjie Chu, Chao Zhou, Xiangyu Wang, Yijia Zhao, Yifan Xu, Chao Xu, Hongjie Wang, Ziyong Zheng, Yundi Huang, Chunchao Xu, Xiaoxiong Zhang, Tao Shen, Yunwu Zheng, Zhaoxuan Fei, Weinan Huang, Menglin Zhu, Luyu Huang, Bin Luo, Song Yu, Hong Guo |
Collaborators
| Co-author | Joint talks |
|---|---|
| Hong Guo | 2 |
| Song Yu | 2 |
| Tao Shen | 2 |
| Yichen Zhang | 2 |
| Yundi Huang | 2 |
| Bin Luo | 1 |
| Bingjie Chu | 1 |
| Chao Xu | 1 |
| Chao Zhou | 1 |
| Chunchao Xu | 1 |
| Hongjie Wang | 1 |
| Luyu Huang | 1 |
| Menglin Zhu | 1 |
| Weinan Huang | 1 |
| Xiangyu Wang | 1 |
| Xiaoxiong Zhang | 1 |
| Yifan Xu | 1 |
| Yijia Zhao | 1 |
| Yunwu Zheng | 1 |
| Zhaoxuan Fei | 1 |