0
talks
2
posters
0
committee roles
0
leadership roles
2025–2025
years active
Posters
| Title | Conference | Co-authors |
|---|---|---|
| Network-capacity-independent quantum network | QCRYPT 2025 | Yuehan Xu, Qijun Zhang, Junpeng Zhang, Xiaojuan Liao, Ziyi Shen, 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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| Interference-free quantum network using Kramers-Kronig receiver | QCRYPT 2025 | Tao Wang, Yankai Xu, Yuehan Xu, Lang Li, Peng Huang, Guihua Zeng |
The quantum internet has the potential to enable applications that are fundamentally unattainable with classical internet technologies. One of its most notable applications is the quantum key distribution (QKD) network, which enables two distant nodes to establish a secure cryptographic key based on the principles of quantum mechanics. However, the heavy reliance on interference in existing QKD protocols undermines the robustness of both the system and the corresponding network infrastructure. We propose an interference-free quantum network architecture based on a Kramers-Kronig receiver. Specifically, we introduce a continuous-variable QKD protocol employing direct detection without the need for interference, wherein the quadrature components are recovered via the Kramers-Kronig relation. Building upon this foundation, we extend the protocol to continuous-variable quantum access networks, thereby demonstrating the enhanced robustness and cost-effectiveness afforded by interference-free detection. Experimental results indicate that each user within the access network can achieve a secret key rate of 200 kbit/s using only a single photodetector and without the inclusion of interference structures. This approach offers a promising direction for constructing interference-free quantum networks and represents a significant step toward the realization of a large-scale quantum internet. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Guihua Zeng | 2 |
| Peng Huang | 2 |
| Tao Wang | 2 |
| Yuehan Xu | 2 |
| Beibei Zhang | 1 |
| Jisheng Dai | 1 |
| Junpeng Zhang | 1 |
| Lang Li | 1 |
| Qijun Zhang | 1 |
| Xiaojuan Liao | 1 |
| Xueqin Jiang | 1 |
| Yankai Xu | 1 |
| Zehao Zhou | 1 |
| Zicong Tan | 1 |
| Ziyi Shen | 1 |