49
collaborators
2012–2020
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
5 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Chip-based measurement-device-independent quantum key distribution | QCRYPT 2019 | regular | Henry Semenenko, Philip Sibson, Andy Hart, Mark Thompson |
Measurement-device-independent quantum key distribution (MDI-QKD) offers a method of distributing shared randomness for use in symmetric key cryptography, while integrated optics provides a promising platform for ubiquitous quantum communication. This work experimentally demonstrates the use of indium phosphide (InP) devices for MDI-QKD. We generate 100 ps pulses for 2 GHz clocked, time-bin encoded BB84 states with random phases through a novel gain switching technique. By interfering two independent InP devices, we achieve 50 bps at 100 km and pre-empt the availability of integrated receivers which will increase rates through inherent scalability. |
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| Networked Quantum-Secured Communications with Hand-held and Integrated Devices: Bristol's Activities in the UK Quantum Communications Hub | QCRYPT 2017 | regular | Philip Sibson, David Lowndes, Stefan Frick, Alasdair Price, Henry Semenenko, Francesco Raffaelli, Daniel Llewellyn, Jake Kennard, Yanni Ou, Fotini Ntavou, Emilio Hugues-Salas, Andy Hart, Richard Collins, Anthony Laing, Reza Nejabati, Dimitra Simeonidou, Mark Thompson, John Rarity |
| Wavelength-Division-Multiplexed QKD with Integrated Photonics | QCRYPT 2016 | regular | Philip Sibson, Mark Thompson |
| Integrated Silicon Photonics for Quantum Key Distribution | QCRYPT 2016 | regular | Philip Sibson, Jake Kennard, Stasja Stanisic, Mark Thompson |
| An experimental implementation of oblivious transfer in the noisy storage model | QCRYPT 2013 | regular ▸ presenter | Stephanie Wehner, Nick Gigov, Raymond Laflamme, Gregor Weihs |
9 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Trojan Horse Attack on Chip-Scale Quantum Key Distribution | QCRYPT 2020 | Friederike Johlinger, Henry Semenko, Djeylan Aktas, Philip Sibson, John Rarity |
We have come a long way since the first implementation of a quantum key distribution (QKD) system and various attacks have been demonstrated, such as the Trojan Horse Attack (THA). In this attack, the eavesdropper Eve gains information by analysing the back-reflections of light she shines into the QKD system. Almost all attacks have been demonstrated on devices based on fibre components. However, the first chip-scale QKD devices are being developed now, utilising the small size of integrated optics, the stability of the optical system and the ease at which it can be mass-produced, showing great commercial potential. Here we discuss a THA on chip-scale QKD. First, points of reflection in a QKD transmitter chip were found via a reflectometry. Based on this we give an experimental set-up to implement a THA which would give Eve access to 50% of the key. Full experimental results of this attack are expected in the next two to three months. |
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| Protecting QKD sources against light-injection attacks | QCRYPT 2020 | Daria Ruzhitskaya, Anastasiya Ponosova, Friederike Johlinger, Poompong Chaiwongkhot, Vladimir Egorov, Djeylan Aktas, John Rarity, Vadim Makarov, Anqi Huang |
In the age of measurement-device-independent quantum key distribution (MDI QKD) and twin- field QKD (TF QKD), the source units of these QKD schemes may become a new ``Achilles' heel" of the whole system. An adversary, Eve, can conduct various attacks on the sources by injecting lasers, whose power is limited by the laser-induced damage threshold of the quantum channel. Such an amount of power may modify the characteristics of components in a source. In this work, we study possible components to protect the source from the light-injected attacks, i.e., Trojan-horse attack, the laser-seeding attack, and the laser-damage attack. Experimental testing shows that fiber-optics isolators and circulators are good passive countermeasures because they sacrifice themselves' isolation under a high-power laser to protect other components behind them. Moreover, we find that illuminated by the high-power laser, integrated photonics QKD chips only lose the transmission of the coupler before any other change happens for the other components in the chips. |
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| Small Form Factor, Low Cost Electronics for Chip Scale and Handheld Quantum Key Distribution Systems | QCRYPT 2018 | Andy Hart, Henry Semenenko, Stefan Frick, David Lowndes, Philip Sibson, Mark Thompson, John Rarity |
| Integrated Photonic Devices for Measurement-Device-Independent Quantum Key Distribution | QCRYPT 2018 | Henry Semenenko, Philip Sibson, Mark Thompson |
| Implementing Hybrid Quantum-Postquantum Security in a Prototype Network | QCRYPT 2018 | Alasdair Price, John Rarity |
| Quantum Key Distribution Without Sifting | QCRYPT 2017 | Alasdair Price, John Rarity |
| Towards the Deployment of Quantum Key Distribution Systems in a Software Defined Networking Environment | QCRYPT 2016 | Alasdair Price, Alejandro Aguado, Emilio Hugues-Salas, Paul Haigh, Philip Sibson, Jaume Marhuenda, Jake Kennard, John Rarity, Mark Thompson, Reza Nejabati, Dimitra Simeonidou |
| Integrated Photonic Devices for Quantum Key Distribution | QCRYPT 2015 | Philip Sibson, Mark Godfrey, Shigehito Miki, Taro Yamashita, Mikio Fujiwara, Masahide Sasaki, Hirotaka Terai, Michael Tanner, Chandra Natarajan, Robert Hadfield, Jeremy O’Brien, Mark Thompson |
| Near Real-Time Prediction of the optimal pair production rate for entanglement-based QKD | QCRYPT 2012 | Catherine Holloway, John Doucette, Jean-Philippe Bourgoin, Thomas Jennewein |
Collaborators
| Co-author | Joint talks |
|---|---|
| Philip Sibson | 9 |
| Mark Thompson | 8 |
| John Rarity | 7 |
| Alasdair Price | 4 |
| Henry Semenenko | 4 |
| Andy Hart | 3 |
| Jake Kennard | 3 |
| David Lowndes | 2 |
| Dimitra Simeonidou | 2 |
| Djeylan Aktas | 2 |
| Emilio Hugues-Salas | 2 |
| Friederike Johlinger | 2 |
| Reza Nejabati | 2 |
| Stefan Frick | 2 |
| Alejandro Aguado | 1 |
| Anastasiya Ponosova | 1 |
| Anqi Huang | 1 |
| Anthony Laing | 1 |
| Catherine Holloway | 1 |
| Chandra Natarajan | 1 |