9
collaborators
2012–2014
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
5 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Entanglement Distribution in Quantum Metropolitan Optical Networks | QCRYPT 2014 | Andreas Poppe, Jesus Martinez-Mateo, Momtchil Peev, Vicente Martin |
| Towards an Optimal Implementation of Cascade | QCRYPT 2014 | Jesus Martinez-Mateo, Christoph Pacher, Vicente Martin |
| A proposal for a wavelength multiplexed quantum metropolitan area network | QCRYPT 2013 | Jesus Martinez-Mateo, Nino Walenta, Hugo Zbinden, Momtchil Peev, Andreas Poppe, Vicente Martin |
Quantum Key Distribution (QKD) is maturing quickly. However, the current approaches to its network use require conditions that make it an expensive technology. All the QKD networks deployed to date are designed as a collection of dedicated point-to-point links that use the trusted repeater paradigm. Instead, we propose a novel network model in which QKD systems use simultaneously quantum and classical signals that are wavelength multiplexed over a common communication infrastructure. Signals are transmitted end-to-end within a metropolitan area using passive components. The model resembles a commercial telecom network and takes advantage of existing components, thus allowing for a cost-effective and reliable deployment. |
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| Networks based on QKD and weakly trusted repeaters | QCRYPT 2013 | David Elkouss, Jesus Martinez-Mateo, Vicente Martin |
We study how to use quantum key distribution (QKD) in common optical network infrastructures and propose a method to overcome its distance limitations. QKD is the first technology offering information theoretic secret-key distribution that relies only on the fundamental principles of quantum physics. Point-to-point QKD devices have reached a mature industrial state; however, these devices are severely limited in distance, since signals at the quantum level (e.g. single photons) are highly affected by the losses in the communication channel and intermediate devices. To overcome this limitation, intermediate nodes (i.e. repeaters) are used. Both, quantum-regime and trusted, classical, repeaters have been proposed in the QKD literature, but only the latter can be implemented in practice. As a novelty, we propose here a new QKD network model based on the use of not fully trusted intermediate nodes, referred as weakly trusted repeaters. This approach forces the attacker to simultaneously break several paths to get access to the exchanged key, thus improving significantly the security of the network. We formalize the model using network codes and provide real scenarios that allow users to exchange secure keys over metropolitan optical networks using only passive components. |
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| Multiplexing QKD systems in Conventional Optical Networks | QCRYPT 2012 | Vicente Martin, Jesus Martinez-Mateo, Andreas Poppe, M. Soto, Nino Walenta, Hugo Zbinden |
Collaborators
| Co-author | Joint talks |
|---|---|
| Jesus Martinez-Mateo | 5 |
| Vicente Martin | 5 |
| Andreas Poppe | 3 |
| Hugo Zbinden | 2 |
| Momtchil Peev | 2 |
| Nino Walenta | 2 |
| Christoph Pacher | 1 |
| David Elkouss | 1 |
| M. Soto | 1 |