14
collaborators
2021–2024
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
2 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Decoy state quantum key distribution with a bright telecom wavelength quantum dot single-photon source | QCRYPT 2024 | Frederik Brooke Barnes, Christopher L. Morrison, Roberto G. Pousa, Francesco Graffiti, Peter Barrow, John Jeffers, Daniel K.L. Oi, Brian Geradot, Alessandro Fedrizzi |
Quantum key distribution (QKD) with solid-state single-photon emitters is gaining traction due to their rapidly improving performance and compatibility with future quantum networks. We report a bright quantum dot based source of telecom photons by frequency converting a near- infrared InGaAs quantum dot to the telecom C-band (1). We implement polarisation encoded BB84 quantum key distribution (QKD), achieving a positive asymptotic key rate over 175 km of optical fibre. We also present finite key analysis optimised for typically non-ideal single- photon sources, achieving 8 orders of magnitude improvement with finite key rates of 40 kbps over 50 km in practical acquisition times of one hour (2). To extend the distances further, we take inspiration from decoy state QKD protocols – typically used to overcome photon- splitting attacks when using weak coherent states – and demonstrate a QD excitation scheme for implementing modulation of the photon number distribution. We show experimentally that the decoy state protocol enables the distribution of a secret key over more than 200 km of optical fibre. |
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| Quantum key distribution with a bright source of telecom single photons based on quantum frequency conversion | QCRYPT 2021 | Christopher L. Morrison, Francesco Graffitti, Nick G. Stoltz, Roberto G. Pousa, Dirk Bouwmeester, Luca Mazzarella, John Jeffers, Daniel K.L. Oi, Alessandro Fedrizzi, Brian D. Gerardot |
We demonstrate fibre-based quantum key distribution over 175 km using a bright frequency converted quantum dot single-photon source. The source is capable of producing count rates approaching 2 MHz at 1550 nm with second order correlations on the order of 3%. This allows for a measured key rate of 130 bps (100 kbps) at 175 km (50 km) in the asymptotic regime using static encoding and predicted positive key rate out to 188 km. This can be extended to 240 km using ultra-low loss fibre based on the measured source parameters. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Alessandro Fedrizzi | 2 |
| Christopher L. Morrison | 2 |
| Daniel K.L. Oi | 2 |
| John Jeffers | 2 |
| Roberto G. Pousa | 2 |
| Brian D. Gerardot | 1 |
| Brian Geradot | 1 |
| Dirk Bouwmeester | 1 |
| Francesco Graffiti | 1 |
| Francesco Graffitti | 1 |
| Frederik Brooke Barnes | 1 |
| Luca Mazzarella | 1 |
| Nick G. Stoltz | 1 |
| Peter Barrow | 1 |