0
talks
2
posters
0
committee roles
0
leadership roles
2025–2025
years active
Posters
| Title | Conference | Co-authors |
|---|---|---|
| High-performance local local oscillator continuous-variable quantum key distribution over high-loss free-space channel | QCRYPT 2025 | Xiaojuan Liao, Yuehan Xu, Peng Huang, Tao Wang, Kaizhi Wang, Guihua Zeng |
The advent of quantum computers has significantly challenged the security of traditional cryptographic systems, prompting a surge in research on quantum key distribution (QKD). Continuous-variable QKD (CVQKD) resists noise well, but the local local oscillator (LLO) CVQKD has limits in high-attenuation channels. Bottleneck challenges include ensuring stable low-noise transmission and accurately estimating parameters under fluctuating channel conditions. We propose a LLO-CVQKD scheme that combines the main quantum system with an auxiliary quantum system, featuring time-varying parameter compensation and time-varying channel transmittance estimation capabilities. Through experimental validation, we first demonstrate high-rate secure quantum key distribution over high-loss free-space channels. Specifically, we achieve asymptotic key rates of 403.896 kbps in 21.5 dB average attenuation free-space channels with turbulence at a 1 GHz repetition rate. |
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| Network-capacity-independent quantum network | QCRYPT 2025 | Yuehan Xu, Junpeng Zhang, Xiaojuan Liao, Ziyi Shen, Xu Liu, Beibei Zhang, Zicong Tan, Zehao Zhou, Jisheng Dai, Xueqin Jiang, Peng Huang, Tao Wang, Guihua Zeng |
Quantum networks revolutionize the way of information transmission and are an essential step in building a quantum internet. Generally, the information capacity per user-channel in a quantum network drastically decreases with the increase of network capacity, making it difficultly scale to large-user scenarios. To break this limit, we propose a network capacity-independent quantum network (NCI-QN) that maintains constant information capacity per user-channel regardless of network scale, overcoming the scalability bottleneck in conventional quantum networks. The architecture employs a multi-mode time-frequency framework, with theoretical analysis extending PLOB and Holevo bounds to network scenarios to establish capacity independence. Experimentally, we demonstrate a 19-user NCI-QN using optical frequency combs in quantum key distribution, achieving a record 8.75 Gbps composable finite-size secure key rate. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Guihua Zeng | 2 |
| Peng Huang | 2 |
| Tao Wang | 2 |
| Xiaojuan Liao | 2 |
| Yuehan Xu | 2 |
| Beibei Zhang | 1 |
| Jisheng Dai | 1 |
| Junpeng Zhang | 1 |
| Kaizhi Wang | 1 |
| Xu Liu | 1 |
| Xueqin Jiang | 1 |
| Zehao Zhou | 1 |
| Zicong Tan | 1 |
| Ziyi Shen | 1 |