1
talks
1
posters
0
committee roles
0
leadership roles
2021–2025
years active
Contributions
QIP QCrypt TQC presenter award · △program ◇steering ○organising □local · filled = chair
Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| MDI-QKD with 19.2 km free-space channel | QCRYPT 2021 | regular | Yuan Cao, Yu-Huai Li, Kui-Xing Yang, Shuang-Lin Li, Xiao-Long Hu, Maimaiti Abulizi, Cheng-Long Li, Weijun Zhang, Qi-Chao Sun, Wei-Yue Liu, Xiao Jiang, Sheng-Kai Liao, Ji-Gang Ren, Hao Li, Lixing You, Zhen Wang, Juan Yin, Chao-Yang Lu, Xiang-Bin Wang, Qiang Zhang, Cheng-Zhi Peng, Jian-Wei Pan |
Posters
| Title | Conference | Co-authors |
|---|---|---|
| Experimental practical quantum tokens with transaction time advantage | QCRYPT 2025 | Adrian Kent, Damián Pitalúa-García, Xiaochen Yao, Xiao-Han Chen, Jia Huang, George Cowperthwaite, Qibin Zheng, Hao Li, Lixing You, Yang Liu, Qiang Zhang, Jian-Wei Pan |
Quantum money is the first invention in quantum information science, promising advantages over classical money by simultaneously achieving unforgeability, user privacy, and instant validation. However, standard quantum money relies on quantum memories and long-distance quantum communication, which are technologically extremely challenging. Quantum "S-money" tokens eliminate these technological requirements while preserving unforgeability, user privacy, and instant validation. Here, we report the first full experimental demonstration of quantum S-tokens, proven secure despite errors, losses and experimental imperfections. The heralded single-photon source with a high system efficiency of 88.24% protects against arbitrary multi-photon attacks arising from losses in the quantum token generation. Following short-range quantum communication, the token is stored, transacted, and verified using classical bits. We demonstrate a transaction time advantage over intra-city 2.77 km and inter-city 60.54 km optical fibre networks, compared with optimal classical cross-checking schemes. Our implementation demonstrates the practicality of quantum S-tokens for applications requiring high security, privacy and minimal transaction times, like financial trading and network control. It is also the first demonstration of a quantitative quantum time advantage in relativistic cryptography, showing the enhanced cryptographic power of simultaneously considering quantum and relativistic physics. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Hao Li | 2 |
| Jian-Wei Pan | 2 |
| Lixing You | 2 |
| Qiang Zhang | 2 |
| Adrian Kent | 1 |
| Chao-Yang Lu | 1 |
| Cheng-Long Li | 1 |
| Cheng-Zhi Peng | 1 |
| Damián Pitalúa-García | 1 |
| George Cowperthwaite | 1 |
| Ji-Gang Ren | 1 |
| Jia Huang | 1 |
| Juan Yin | 1 |
| Kui-Xing Yang | 1 |
| Maimaiti Abulizi | 1 |
| Qi-Chao Sun | 1 |
| Qibin Zheng | 1 |
| Sheng-Kai Liao | 1 |
| Shuang-Lin Li | 1 |
| Wei-Yue Liu | 1 |