23
collaborators
2019–2024
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
3 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| A fast and robust quantum random number generator with a self-contained integrated photonic randomness core | QCRYPT 2024 | regular | Davide G. Marangon, Peter Raymond Smith, Nathan Walk, Taofiq K Paraiso, James Dynes, Victor Lovic, Mirko Sanzaro, Innocenzo De Marco, Marco Lucamarini, Zhiliang Yuan, Andrew Shields |
Random numbers play a crucial role in information technology, particularly as digital communication capacity continues to expand. Consequently, the need for secure and high-rate random number generation has become increasingly urgent. While integrated photonics technology holds promise for mass-producing optoelectronic quantum random number generators (QRNGs), there remains a challenge in developing fast, robust, and scalable solutions suitable for industrial deployment. Addressing this challenge, we present a fast QRNG solution in this study, leveraging a photonic integrated circuit (PIC) directly embedded onto a versatile electronic platform. Designed to withstand real-world applications, our PIC is packaged to align with industrial electronic assembly lines. To rigorously assess scalability and stability, these generators underwent week-long periods of continuous GHz operation. Furthermore, a QRNG was integrated into a quantum key distribution system, where despite operating in an uncontrolled environment, minimal variations in physical randomness were observed over 38 days, as measured from 2.9 million histograms. Finally, we implemented a security model for the QRNGs, enabling rate adjustment to match the actual randomness content and demonstrating secure generation at 2 Gbit/s. |
|||
| Twin Field Quantum Key Distribution Across National Scale Telecommunication Infrastructure | QCRYPT 2024 | regular | Mirko Pittaluga, Yuen San Lo, Adam Brzosko, Robert I Woodward, Matthew S. Winnel, James Dynes, Piotr Rydlichowski, Domenico Vicinanza, Guy Roberts, Andrew Shields |
Quantum Communications (QC) harness quantum mechanical phenomena such as superposition and entanglement to enhance information transfer between remote nodes. Coherent quantum communications refer to QC schemes relying on maintaining optical coherence between nodes for successful execution. These schemes typically involve single photon interference between optical fields generated by distant parties and represent a cornerstone of a promising architecture of the quantum internet. Despite their significant potential, scientific and technical hurdles - including optical coherence maintenance, integrating high-performance single-photon detectors, and precise stabilisation and synchronisation - have prevented the implementation of coherent QC over existing telecommunication infrastructure. Here we present the first realisation of a coherent QC fully integrated into standard telecommunication infrastructure over a link connecting the German cities of Frankfurt and Kehl. The implemented scheme is the Twin Field Quantum Key Distribution (QKD) protocol, enabling the distribution of a shared secret key for encryption at a rate of 110 bit/s over a highly asymmetric 254 km link. This result, obtained with a system featuring measurement-device-independent properties, marks the longest installed QKD implementation utilising non-cryogenic cooled detectors and was enabled by the QC system architecture we developed and by our approach to phase stabilisation, which involves active out-of-band phase stabilisation and avalanche photodiodes for single photon detection. This achievement, not only represents a milestone for practical quantum communications but also validates the compatibility of coherent QC with current telecommunication infrastructure, supporting the feasibility of a phase-based architecture for the quantum internet. |
|||
| System Integration of Photonic Integrated Quantum Communications Chips | QCRYPT 2021 | regular | Taofiq K Paraiso, Davide G. Marangon, Innocenzo De Marco, Mirko Sanzaro, Robert I Woodward, James Dynes, Zhiliang Yuan, Andrew Shields |
Integrated photonics presents an opportunity for low-cost and highly-reproducible quantum cryptographic systems. However, due to numerous challenges such as packaging, power consumption and interfacing multiple chips in real, a standalone deployable photonic integrated system is still missing. Here we address all these challenges to present a real-time quantum communication system using integrated photonics. The system operated without intervention over multiple days and is capable of secure key rates of > 470 kbps over 10 km of fiber |
|||
1 Poster
| Title | Conference | Co-authors |
|---|---|---|
| Precision metrology of novel components for high bit rate QKD devices | QCRYPT 2019 | Robert Kirkwood Starkwood, Ke Guo, Christopher J. Chunnilall, Alastair Sinclair, Taofiq K Paraiso, Mirko Sanzaro, Innocenzo De Marco, Zhiliang Yuan, Andrew Shields |
Collaborators
| Co-author | Joint talks |
|---|---|
| Andrew Shields | 4 |
| Innocenzo De Marco | 3 |
| James Dynes | 3 |
| Mirko Sanzaro | 3 |
| Taofiq K Paraiso | 3 |
| Zhiliang Yuan | 3 |
| Davide G. Marangon | 2 |
| Robert I Woodward | 2 |
| Adam Brzosko | 1 |
| Alastair Sinclair | 1 |
| Christopher J. Chunnilall | 1 |
| Domenico Vicinanza | 1 |
| Guy Roberts | 1 |
| Ke Guo | 1 |
| Marco Lucamarini | 1 |
| Matthew S. Winnel | 1 |
| Mirko Pittaluga | 1 |
| Nathan Walk | 1 |
| Peter Raymond Smith | 1 |
| Piotr Rydlichowski | 1 |