18
collaborators
2020–2024
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
3 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Weak-trace-free Counterfactual Communication via Quantum Zeno effect | QCRYPT 2024 | Tianyi Xing, Anqi Huang, Junjie Wu, Ping Xu, Pingyu Zhu, Chao Wu, Yizhi Wang, Jiangfang Ding, Dongyang Wang, Yaxuan Wang |
The Quantum Zeno effect inhibits the evolution of quantum states through repeated yet weak measurements, thereby significantly enhancing the detection probability of interaction-free measurement (IFM). This fundamental mechanism facilitates high-efficiency counterfactual quantum communication that information delivery without particle transmission through the channel. Regrettably, the original protocol left the weak trace of particles in the channel; fortunately, an upgraded counterfactual communication protocol eliminates this issue by modifying the structure unit according to two-state vector formalism~(TSVF). However, no study has realized the application of the quantum Zeno effect in weak-trace-free counterfactual communication to achieve efficient information transmission. In this paper, we experimentally demonstrate weak-trace-free counterfactual communication via the quantum Zeno effect on a nanophotonic chip, achieving a transmission probability of 74.2 ± 1.6% for bit 0 and 85.1 ± 1.3% for bit 1. Furthermore, we successfully transmit our Quanta group's logo through counterfactual communication implemented on the chip. |
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| Hacking the self-differencing avalanche detectors via pulse illumination | QCRYPT 2021 | Binwu Gao, Anqi Huang, Zhihao Wu, Weixu Shi, Ping Xu, Junjie Wu |
Quantum key distribution (QKD) has been proved to be information-theoretically secure in theory. In practice, the self-differencing avalanche photodiode detectors (SD-APDs) are commonly used in high-speed QKD systems. However, we experimentally show that the SD- APD under test can be successfully hacked by the pulse-illumination attack. This attack might compromise the security of a high-speed QKD system with SD-APDs. This study also indicates that the best-practice criteria for practical security of SD-APDs might take the threat of pulse-illumination attack into account. |
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| PhotoniQLAB: A simulator for Photonic Quantum Information Processing | QIP 2020 | Zhihao Wu, Yong Liu, Dongyang Wang, Shichuan Xue, Yizhi Wang, Pingyu Zhu, Anqi Huang, Xiang Fu, Xiaogang Qiang, Ping Xu, Mingtang Deng, Junjie Wu |
Collaborators
| Co-author | Joint talks |
|---|---|
| Anqi Huang | 3 |
| Junjie Wu | 3 |
| Ping Xu | 3 |
| Dongyang Wang | 2 |
| Pingyu Zhu | 2 |
| Yizhi Wang | 2 |
| Zhihao Wu | 2 |
| Binwu Gao | 1 |
| Chao Wu | 1 |
| Jiangfang Ding | 1 |
| Mingtang Deng | 1 |
| Shichuan Xue | 1 |
| Tianyi Xing | 1 |
| Weixu Shi | 1 |
| Xiang Fu | 1 |
| Xiaogang Qiang | 1 |
| Yaxuan Wang | 1 |
| Yong Liu | 1 |