0
talks
2
posters
0
committee roles
0
leadership roles
2025–2025
years active
Posters
| Title | Conference | Co-authors |
|---|---|---|
| Continuous-variable quantum key distribution over 50.4 km fiber using integrated silicon photonic transmitter and receiver | QCRYPT 2025 | Yongmin Li, Shuaishuai Liu, Yuqi Shi, Yizhuo Hou, Pu Wang, Yu Zhang, Shiwei Yang, Zhengguo Lu, Xuyang Wang |
Quantum key distribution (QKD) is the fastest-growing and relatively mature technology in the field of quantum information, enabling information-theoretically secure key distribution between two remote users. Although QKD based on off-the-shelf telecom components has been validated in both laboratory and field tests, its high cost and large volume remain major obstacles to large-scale deployment. Photonic integration, featured by its compact size and low cost, offers an effective approach to addressing the above challenges faced by QKD. Here, we implement a high-performance, integrated local local oscillator continuous-variable (CV) QKD system based on an integrated silicon photonic transmitter and receiver. By employing a high-speed silicon photonic integrated in-phase and quadrature modulator, a high signal-to-noise ratio and high bandwidth silicon photonic integrated heterodyne detector, and digital signal processing, our CV-QKD system achieves a symbol rate of up to 1.5625 GBaud. Furthermore, the system achieves high secret key rates of 14.7 and 2.46 Mbps over 25.8 and 50.4 km standard single-mode fiber, respectively, using an 8-phase-shift keying discrete modulation. Our fully integrated CV-QKD system with high symbol rate and long transmission distance pays the way for the quantum secure communication network at metropolitan area. |
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| High integrated and broadband entropy source of quantum random number generator based on vacuum fluctuation | QCRYPT 2025 | X W, Yuqi Shi, Ning Wang, Jie Yun, Jiaxu Li, Shuaishuai Liu, Zhenguo Lu, Jun Zou, Yongmin Li |
In this study, a high integrated and broadband entropy source of quantum random number generator (QRNG) based on the vacuum fluctuation is designed and verified experimentally. The size of hybrid chip, which is the heart core of entropy source, composed of laser chip and silicon photonics chip is reduced to 6.3×2.6×1.5 mm3. The 3 dB bandwidth of the balanced homodyne detector in entropy source based on cascaded radio frequency amplifier is 2.4 GHz, and the common mode rejection ratio was greater than 25 dB. A quantum to classical noise ratio of 9.48 dB was achieved when the photoelectron current is 1 mA. The noise equivalent power is 8.85 pW/√Hz, and the equivalent transimpedance is 22.8 K. The equalizer technology is utilized to optimize the quantum random number generation rate by eliminate the dependence of the adjacent samples. The quantum random number generation speed can achieve 67.9 Gbps under average conditional minimum entropy and 61.9 Gbps under worst-case conditional minimum entropy. The hybrid chip in our paper promote the QRNG entropy source based on vacuum fluctuation to a higher integration and faster stage. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Shuaishuai Liu | 2 |
| Yongmin Li | 2 |
| Yuqi Shi | 2 |
| Jiaxu Li | 1 |
| Jie Yun | 1 |
| Jun Zou | 1 |
| Ning Wang | 1 |
| Pu Wang | 1 |
| Shiwei Yang | 1 |
| X W | 1 |
| Xuyang Wang | 1 |
| Yizhuo Hou | 1 |
| Yu Zhang | 1 |
| Zhengguo Lu | 1 |
| Zhenguo Lu | 1 |