18
collaborators
2020–2025
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
1 Talk
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Securing practical quantum cryptography with optical power limiters | QCRYPT 2020 | regular | Ignatius William Primaatmaja, Jing Yan Haw, Xiao Gong, Chao Wang, Charles Ci Wen Lim |
Given that most implementations of quantum cryptography systems require low light operations for security reasons, limiting the energy of incoming/outgoing optical signals is a central task. In this submission, we propose and demonstrate a novel and practical power limiter using the thermo-optical defocusing effect of an acrylic prism. The results show that a power limiting in the regime of mW or lower can be achieved, and at the same time possess desirable features like compactness, robustness, polarization and spectrum dimension independence, etc. Our work provides an effective way for limiting the incoming/outgoing optical energy, which is important for practical quantum cryptographic protocols. We believe it will attract much interest and possess the potential to become a standard tool for practical quantum applications. |
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9 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Self-testing Quantum Randomness Expansion using Silicon Photonic Chip | QCRYPT 2025 | Ignatius William Primaatmaja, Yue Chen, Si Qi Ng, Hong Jie Ng, Xiao Gong, Koon Tong Goh, Chao Wang, Charles Ci Wen Lim |
The power of quantum random number generation is more than just the ability to create truly random numbers. It can also enable self-testing, which allows the user to verify the implementation integrity of critical quantum components with minimal assumptions. In this work, we develop and implement a self-testing quantum random number generator (QRNG) chipset capable of generating 15.33 Mbits of certifiable randomness in each run, producing an expansion rate of 5.11×10-4 at a repetition rate of 10 MHz. The chip design is based on a highly loss-and-noise tolerant measurement-device-independent protocol, where random coherent states encoded using quadrature phase shift keying (QPSK) are used to self-test the quantum homodyne detection unit, well-known to be challenging to characterise in practice. Importantly, this proposal opens up the possibility to implement miniaturised self-testing QRNG devices at production scale using standard silicon photonics foundry platforms. |
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| Gigabit-rate Quantum Key Distribution on Integrated Photonic Chips | QCRYPT 2025 | Si Qi Ng, Florian Kanitschar, Chao Wang |
Quantum key distribution (QKD) provides information-theoretic security guaranteed by the laws of quantum mechanics, making it resistant to future computational threats, including quantum computers. While QKD technology shows great promise, its widespread adoption depends heavily on its usability and viability, with key rate performance and cost-effectiveness serving as critical evaluation metrics. In this work, we report an integrated silicon photonics-based QKD system that achieves a secret key rate of 1.213 Gbps over a metropolitan distance of 10 km with polarization multiplexing. Our contributions are twofold. First, in the quantum optical layer, we developed an on-chip quantum transmitter and an efficient quantum receiver that operate at 40 Gbaud/s at room temperature. Second, we designed a discrete-modulated continuous variable (DM CV) QKD implementation with efficient information reconciliation based on polar codes, enabling potentially high-throughput real-time data processing. Our results demonstrate a practical QKD solution that combines high performance with cost efficiency. We anticipate this research will pave the way for large-scale quantum secure networks. |
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| Integrated photonic platform with high-speed single-photon path entanglement | QCRYPT 2022 | Chao Wang, Koon Tong Goh, Si Qi Ng, Haibo Wang, Yue Chen, Jing Yan Haw, Xiao Gong, Charles Ci Wen Lim |
| Experimental proposal of discrete-variable quantum key distribution with homodyne detector | QCRYPT 2022 | Cassey C. Liang, Chao Wang, Ignatius William Primaatmaja, Jing Yan Haw, Charles Ci Wen Lim |
| Quantum random number generation with uncharacterised homodyne detection | QCRYPT 2022 | Chao Wang, Ignatius William Primaatmaja, Hong Jie Ng, Jing Yan Haw, Raymond Ho, Jianran Zhang, Charles Ci Wen Lim |
| INTEGRATED ULTRA-WIDE BANDWIDTH HOMODYNE DETECTOR | QCRYPT 2022 | Si Qi Ng, Chao Wang, Charles Ci Wen Lim |
| Provably-secure quantum randomness expansion with untrusted homodyne detection secure against quantum side-information | QCRYPT 2021 | Ignatius William Primaatmaja, Jianran Zhang, Jing Yan Haw, Raymond Ho, Chao Wang, Charles Ci Wen Lim |
Quantum random number generators (QRNGs) could generate numbers that are certifiably random even to a potential adversary who holds some side-information. However, many QRNGs require extremely precise characterisation of the source of the quantum states and the measurement apparatus. In this work, we propose a semi-device-independent QRNG protocol with untrusted homodyne detection. We show that our protocol is secure against quantum side-information, taking into account finite-size effects without making any assumption on the measurement device. |
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| Generalised Decoy-State Scheme for Rigorous Characterization of Single-Photon Detectors | QCRYPT 2021 | Haibo Wang, Jishen Zhang, Chao Wang, Haiwen Xu, Yan Liang, Charles Ci Wen Lim, Xiao Gong |
Characterizing the single-photon detection efficiency (SPDE) of a single-photon detector (SPD) is an essential but nontrivial task for various applications. Conventional methods require detailed detector models to calculate the estimated SPDE, which are not always available. In this work, a generalized method based on decoy-state for accurate characterization of SPDs is proposed and experimentally demonstrated. This work provides a new toolbox for rigorous SPD characterization with relaxed assumptions on the detector model, opening new possibilities in device calibration standards and quantum information applications. |
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| Ultrafast and practical Bell-based quantum randomness generation with classical optical homodyne detection | QCRYPT 2020 | Chao Wang, Yukun Wang, Koon Tong Goh, Jing Yan Haw, Charles Ci Wen Lim |
By making reasonable assumptions on realistic systems, we propose and implement the first ultra-high-speed CHSH experiment working at 40GHz demonstrating a gigabit quantum certified random number throughput. Moreover, our scheme is suitable for optical chip design since it only requires standard optical components and balanced detectors. Furthermore, our scheme paves the way for the promising research direction to utilise noisy detectors for quantum system construction, which might be helpful for certain noise-sensitive applications, e.g. quantum sensing and quantum computing. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Chao Wang | 10 |
| Charles Ci Wen Lim | 9 |
| Jing Yan Haw | 6 |
| Ignatius William Primaatmaja | 5 |
| Si Qi Ng | 4 |
| Xiao Gong | 4 |
| Koon Tong Goh | 3 |
| Haibo Wang | 2 |
| Hong Jie Ng | 2 |
| Jianran Zhang | 2 |
| Raymond Ho | 2 |
| Yue Chen | 2 |
| Cassey C. Liang | 1 |
| Florian Kanitschar | 1 |
| Haiwen Xu | 1 |
| Jishen Zhang | 1 |
| Yan Liang | 1 |
| Yukun Wang | 1 |