30
collaborators
2019–2025
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
3 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Quantum key distribution over 658 km fiber with distributed vibration sensing | QCRYPT 2022 | regular | Jiu-Peng Chen, Yang Liu, Qiang Zhang, Jian-Wei Pan |
| Experimental Side-Channel-Secure Quantum Key Distribution | QCRYPT 2022 | regular | Xiao-Long Hu, Cong Jiang, Jiu-Peng Chen, Yang Liu, Wei-Jun Zhang, Zong-Wen Yu, Hao Li, Li-Xing You, Zhen Wang, Xiang-Bin Wang, Qiang Zhang, Jian-Wei Pan |
| Experimental Twin-field quantum key distribution through sending-or-not-sending | QCRYPT 2019 | regular | Yang Liu, Zong-Wen Yu, Weijun Zhang, Jian-Yu Guan, Jiu-Peng Chen, Xiao-Long Hu, Hao Li, Teng-Yun Chen, Lixing You, Zhen Wang, Xiang-Bin Wang, Qiang Zhang, Jian-Wei Pan |
Channel loss is one of the most severe limitation to extend the transmission distance of quan- tum key distribution in practice. The twin-field quantum key distribution can achieve a much longer transmission distance with improving the key rate from the linear scale of channel loss in the traditional decoy-state method to the square root scale of the channel transmittance. Here we demonstrate the real-optical-fibre experimental results of twin-field quantum key distribution through the sending-or-not-sending protocol, which is fault tolerant to large misalignment error. The phase locking technology developed in the frequency transfer field is adopted to ensure Alice’s and Bob’s source wavelengths are locked to each other. Phase reference pulses are used to monitor the phase difference between the channel. Further with a high performance single photon detector, we obtain the positive key rates for different distances, specifically, the obtained secure key rate at 150 km is higher than that of the measurement device independent QKD. |
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3 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Experimental Multi-Dimensional Side-Channel-Secure Quantum Key Distribution | QCRYPT 2025 | Hao Dong, Cong Jiang, Di Ma, Jia Huang, Hao Li, Li-Xing You, Yang Liu, Xiang-Bin Wang, Qiang Zhang, Jian-Wei Pan |
Quantum key distribution (QKD) theoretically provides unconditional security between remote parties. However, guaranteeing practical security through device characterisation alone is challenging in real-world implementations due to the multi-dimensional spaces in which the devices may be operated. The side-channel-secure (SCS)-QKD protocol, which only requires bounding the upper limits of the intensities for the two states, theoretically provides a rigorous solution to the challenge and achieves measurement-device-independent security in detection and security for whatever multi-dimensional side channel attack in the source. Here, we demonstrate a practical implementation of SCS-QKD, achieving a secure key rate of 6.60 kbps through a 50.5 km fibre and a maximum distribution distance of 101.1 km while accounting for finite-size effects. Our experiment also represents an approximate forty-times improvement over the previous experiment. |
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| 1002 km Twin-Field Quantum Key Distribution with Finite-Key Analysis | QCRYPT 2024 | Yang Liu, Wei-Jun Zhang, Cong Jiang, Jiu-Peng Chen, Di Ma, Wen-Xin Pan, Hao Dong, Jia-Min Xiong, Cheng-Jun Zhang, Hao Li, Rui-Chun Wang, Chao-Yang Lu, Jun Wu, Teng-Yun Chen, Lixing You, Xiang-Bin Wang, Qiang Zhang, Jian-Wei Pan |
Quantum key distribution (QKD) holds the potential to establish secure keys over long distances. The distance of point-to-point QKD secure key distribution is primarily impeded by the transmission loss inherent to the channel. In the quest to realize a large-scale quantum network, increasing the QKD distance under current technology is of great research interest. Here we adopt the 3-intensity sending-or-not-sending twin-field QKD (TF-QKD) protocol with the actively-odd-parity-pairing method. The experiment demonstrates the feasibility of secure QKD over a 1002 km fibre channel considering the finite size effect. The secure key rate is $3.11 10^{-12}$ per pulse at this distance. Furthermore, by optimizing parameters for shorter fiber distances, we conducted performance tests on key distribution for fiber lengths ranging from 202 km to 505 km. Notably, the secure key rate for the 202 km, the normal distance between major cities, reached 111.74 kbps. |
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| Quantum Dueling: An efficient solution for combinatorial optimization | QIP 2024 | Letian Tang, Haorui Wang, Zhengyang Li, Haozhan Tang, Shujin Li |
Collaborators
| Co-author | Joint talks |
|---|---|
| Jian-Wei Pan | 5 |
| Qiang Zhang | 5 |
| Yang Liu | 5 |
| Hao Li | 4 |
| Jiu-Peng Chen | 4 |
| Xiang-Bin Wang | 4 |
| Cong Jiang | 3 |
| Di Ma | 2 |
| Hao Dong | 2 |
| Li-Xing You | 2 |
| Lixing You | 2 |
| Teng-Yun Chen | 2 |
| Wei-Jun Zhang | 2 |
| Xiao-Long Hu | 2 |
| Zhen Wang | 2 |
| Zong-Wen Yu | 2 |
| Chao-Yang Lu | 1 |
| Cheng-Jun Zhang | 1 |
| Haorui Wang | 1 |
| Haozhan Tang | 1 |