13
collaborators
2020–2024
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
1 Talk
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Experimental quantum conference key agreement | QCRYPT 2020 | regular | Alessandro Fedrizzi, Massimiliano Proietti, Joseph Ho, Federico Grasselli, Mehul Malik |
Paradigmatic QKD protocols establish secure keys between pairs of users, however when more than two parties want to communicate, recently introduced quantum conference quantum key agreement (CKA) protocols can outperform 2-party primitives in terms of resource cost. In this contribution we report an implementation of a four-user quantum CKA protocol using polarisation-encoded multi-partite GHZ states at telecom wavelength. We distribute these states over up to 50km of optical fibre and implement custom multiparty error correction and privacy amplification on the resulting raw keys. From a finite-key analysis, we establish an information-theoretic secure key of up to 1.15 × 10^6 bits, which is used to encrypt and securely share an image between the four users. Surpassing the previous maximum distance for GHZ state transmission by more than an order of magnitude, these results demonstrate the viability of network protocols relying on multi-partite-entanglement. Future applications beyond quantum CKA include entanglement-assisted remote clock-synchronization, quantum secret sharing, and GHZ-based repeater protocols. |
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1 Poster
| 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, Zhe Xian Koong, 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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Collaborators
| Co-author | Joint talks |
|---|---|
| Alessandro Fedrizzi | 2 |
| Brian Geradot | 1 |
| Christopher L. Morrison | 1 |
| Daniel K.L. Oi | 1 |
| Federico Grasselli | 1 |
| Francesco Graffiti | 1 |
| Frederik Brooke Barnes | 1 |
| John Jeffers | 1 |
| Joseph Ho | 1 |
| Massimiliano Proietti | 1 |
| Mehul Malik | 1 |
| Roberto G. Pousa | 1 |
| Zhe Xian Koong | 1 |