2
talks
1
posters
0
committee roles
0
leadership roles
2024–2025
years active
Contributions
QIP QCrypt TQC presenter award · △program ◇steering ○organising □local · filled = chair
Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Experimental mode-pairing quantum key distribution surpassing the repeaterless bound | QCRYPT 2025 | regular | Likang Zhang, Wei Li, Jiawei Pan, Yichen Lu, Wenwen Li, Zheng-Ping Li, Xiongfeng Ma, Feihu Xu, Jianwei Pan |
We demonstrate a practical high-performance mode-pairing quantum key distribution system that is able to surpass the repeaterless key rate bound using commercial lasers. We propose a frequency tracking scheme to address phase fluctuations and a theoretical model to analyze the phase noise and optimize the system parameters. Our system achieves a secret key rate of 47.8 bit/s over 403 km standard fiber, which is 2.92 times of the repeaterless bound. Furthermore, we compare the performance between MP-QKD and no-phase-locking TF-QKD under various practical conditions and show that MP-QKD exhibits superior performance at short distances with low error rates, while TF-QKD is more advantageous for long distances with consistent error rates. |
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| Implementation of mode-pairing quantum key distribution in inter-city networks | QCRYPT 2024 | regular | Hao-Tao Zhu, Wen-Xin Pan, Chao-Wu Zhou, Mi Zou, Shibiao Tang, Xiongfeng Ma, Teng-Yun Chen, Jian-Wei Pan |
Quantum key distribution is a cornerstone of quantum technology, offering information-theoretical secure keys for remote parties. With many quantum communication networks established globally, the mode-pairing protocol stands out for its efficacy over inter-city distances using simple setups, emerging as a promising solution. In this study, we employ the mode-pairing scheme into existing inter-city fiber links, conducting field tests across distances ranging from tens to about a hundred kilometers. Our system achieves a key rate of $1.217$ kbit/s in a $195.85$ km symmetric link and $3.089$ kbit/s in a $127.92$ km asymmetric link without global phase locking. The results demonstrate that the mode-pairing protocol can achieve key rates comparable to those of a single quantum link between two trusted nodes on the Beijing-Shanghai backbone line, effectively reducing the need for half of the trusted nodes. These field tests confirm the mode-pairing scheme's adaptability, efficiency, and practicality, positioning it as a highly suitable protocol for quantum networks. |
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Posters
| Title | Conference | Co-authors |
|---|---|---|
| Enhanced Analysis for the Decoy-State Method | QCRYPT 2025 | Zitai Xu, Xiongfeng Ma |
Quantum key distribution stands as a cornerstone of quantum information science, enabling secure communication based on fundamental quantum principles. In reality, practical implementations often rely on the decoy-state method to ensure security against photon-number-splitting attacks. A significant challenge in realistic quantum cryptosystems arises from statistical fluctuations due to finite data sizes, which complicate the key-rate estimation because of the nonlinear dependence on the phase error rate. In this study, we refine and enhance the key rate bound for the decoy-state method and introduce an improved statistical fluctuation analysis framework. By integrating our refined bound with this advanced fluctuation analysis, we achieve higher key generation rates, as demonstrated in numerical simulations of the one-decoy-state method --- a simple yet increasingly practical protocol --- under typical experimental conditions. Notably, our approach to fluctuation analysis extends beyond quantum cryptography, offering broad applicability to various quantum information processing tasks, particularly those involving linear relationships between objectives and experimental variables. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Xiongfeng Ma | 3 |
| Chao-Wu Zhou | 1 |
| Feihu Xu | 1 |
| Hao-Tao Zhu | 1 |
| Jian-Wei Pan | 1 |
| Jianwei Pan | 1 |
| Jiawei Pan | 1 |
| Likang Zhang | 1 |
| Mi Zou | 1 |
| Shibiao Tang | 1 |
| Teng-Yun Chen | 1 |
| Wei Li | 1 |
| Wen-Xin Pan | 1 |
| Wenwen Li | 1 |
| Yichen Lu | 1 |
| Zheng-Ping Li | 1 |
| Zitai Xu | 1 |