59
collaborators
2016–2023
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
5 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Connecting three countries through an inter-European quantum network | QCRYPT 2022 | regular | Domenico Ribezzo, Mujtaba Zahidy, Ilaria Vagniluca, Nicola Biagi, Saverio Francesconi, Tommaso Occhipinti, Martin Loncaric, Ivan Cvitic, Mario Stipcevic, Žiga Pušavec, Rainer Kaltenbaek, Anton Ramšak, Francesco Cesa, Giorgio Giorgetti, Francesco Scazza, Angelo Bassi, Paolo De Natale, Francesco Saverio Cataliotti, Massimo Inguscio, Davide Bacco, Alessandro Zavatta |
| Overcoming qubit-based QKD with efficient high-dimensional encoding | QCRYPT 2020 | regular | Ilaria Vagniluca, Beatrice DaLio, Davide Rusca, Daniele Cozzolino, Yunhong Ding, Hugo Zbinden, Alessandro Zavatta, Davide Bacco |
We experimentally tested an alternative fiber-based setup for 4D-QKD, with time and phase encoding and one-decoy technique. We evaluated the secret key rate achievable in a finite-key scenario and we compared it with the binary-encoded BB84 protocol, which was tested with the same experimental setup. Our 4D-QKD system makes it possible to improve the secret key rate by more than a factor 2 in the saturation-regime of single-photon detectors, without requiring additional expensive resources to the 2D-QKD setup. In comparison to previous works, our scheme allows to measure the 4D states with a simplified and compact receiver, thus making it a cost-effective solution for practical and fiber-based QKD. |
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| High-dimensional chip-to-chip entanglement distribution through multicore fibre | QCRYPT 2019 | regular | Daniel Llewellyn, Caterina Vigliar, Benjamin Slater, Beatrice Da Lio, Stefano Paesani, Jorge Barreto, Dondu Sahin, Massimo Borghi, John Rarity, Karsten Rottwitt, Jianwei Wang, Yunhong Ding, Mark Thompson, Davide Bacco |
In this work we report the first chip-to-chip multidimensional entanglement distribution. The faithful generation and transmission of the multidimensional quantum states relies on two main ingredients: silicon integrated photonics, offering a compelling platform for quantum information processing, and multicore fibres, which allows the reliable transmission of path encoded qudits. |
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| High-dimensional fiber based quantum key distribution with twisted photons | QCRYPT 2018 | regular | ▸Davide Bacco, Daniele Cozzolino, Beatrice Da Lio, Kasper Ingerslev, Yunhong Ding, Kjeld Dalgaard, Poul Kristensen, Michael Galili, Karsten Rottwitt, Siddharth Ramachandran |
| Quantum key distribution over multicore fiber based on silicon photonics | QCRYPT 2017 | regular | Yunhong Ding, Davide Bacco, Kjeld Dalgaard, Xinlun Cai, Xiaoqi Zhou, Karsten Rottwitt |
7 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Practical High-Dimensional Quantum Key Distribution Protocol over deployed Multicore fiber | QCRYPT 2023 | Mujtaba Zahidy, Domenico Ribezzo, Claudia De Lazzari, Ilaria Vagniluca, Nicola Biagi, Tommaso Occhipinti, Michael Galili, Tetsuya Hayashi, Dajana Cassioli, Antonio Mecozzi, Cristian Antonelli, Alessandro Zavatta, Davide Bacco |
Quantum key distribution (QKD) is introduced to make encryption and transmission of data over any public channel unconditionally secure. A key requirement of such a promise is to have access to an encryption key with a similar length as the message and data itself. While QKD has become mature and the key rate significantly increased over the past 20 years, there is still a notable gap between data transmission and key generation rates. High-dimensional QKD is proposed as a method to respond to this demand. Here, we demonstrate a 4-dimensional path-\&-time encoding QKD system with more than 100\% improvement compared to a standard 2D system in the same test-bed, a 52-km deployed multicore fiber link. |
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| Generalized Time-bin Quantum Random Number Generator with Uncharacterized Devices | QCRYPT 2022 | Hamid Tebyanian, Mujtaba Zahidy, Davide Bacco |
| Recent development of OAM mode generation for quantum communication | QCRYPT 2022 | Mujtaba Zahidy, Yaoxin Liu, Daniele Cozzolino, Hamid Tebyanian, Yunhong Ding, Toshio Morioka, Davide Bacco |
| Towards high-dimensional QKD in deployed multicore fiber | QCRYPT 2021 | Mujtaba Zahidy, Nicola Biagi, Antonio Mecozzi, Cristian Antonelli, Alessandro Zavatta, Davide Bacco |
The demand for higher secret key rates, in conjunction with the need for extending the reach of quantum key distribution has led to the devising of multiple novel protocols. Most of these protocols make use of qubits, owing to the simplicity with which they can be encoded in quantum communication systems that are available today. On the other hand, high-dimensional quantum states, yet more challenging to generate and transmit, enable higher secret-key rates and are more robust against errors in the process of quantum key distribution. A promising implementation of high-dimensional QKD is the one based on path encoding in optical-fiber quantum channels [1], where the most straightforward choice would be the use of multiple fibers. This choice, however, is challenged by the intrinsic non-homogeneity of different fibers. A more practical alternative is the one offered by multi-core fiber (MCF) technology, which has matured in recent years in the context of space-division multiplexed classical optical communications. In both cases, a key requirement is that the relative phase between spatial paths is preserved, which requires some phase-stabilization procedure in the presence of propagation-induced random phase drift. High-dimensional QKD in MCFs has been recently investigated in [1], where 4-dimensional QKD on a 2-km-long MCF was demonstrated. This was possible thanks to a phase stabilization scheme in which the phase fluctuations of a co-propagating classical continuous-wave laser signal were monitored in order to compensate for the phase drift. The same stabilization system was successfully tested more recently in the unique SDM test-bed in L'Aquila [2], in Italy, on various strands of deployed MCFs, up to a total length of 26 km [2]. In this work, we aim at developing a real-time high-dimensional QKD system based on joint path and time-bin encoding in MCFs. By using two fiber cores and two time bins, we generate 4-dimensional states. |
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| Field trial of a finite-key quantum key distribution system in the Florence metropolitan area | QCRYPT 2019 | Davide Bacco, Ilaria Vagniluca, Beatrice Da Lio, Nicola Biagi, Adriano Della Frera, Davide Calonico, Costanza Toninelli, Francesco Saverio Cataliotti, Marco Bellini, Alessandro Zavatta |
| Experimental DPTS protocol over 170 km fiber-based link | QCRYPT 2017 | Davide Bacco, Beatrice Da Lio, Daniele Cozzolino, Yunhong Ding, Kjeld Dalgaard, Karsten Rottwitt |
| Differential Phase-time Quantum Key Distribution Protocol | QCRYPT 2016 | Davide Bacco, Jesper Bjerge Christensen, Mario A. Usuga Castaneda, Yunhong Ding, Karsten Rottwitt |
Collaborators
| Co-author | Joint talks |
|---|---|
| Davide Bacco | 12 |
| Yunhong Ding | 7 |
| Alessandro Zavatta | 5 |
| Karsten Rottwitt | 5 |
| Mujtaba Zahidy | 5 |
| Beatrice Da Lio | 4 |
| Daniele Cozzolino | 4 |
| Ilaria Vagniluca | 4 |
| Nicola Biagi | 4 |
| Kjeld Dalgaard | 3 |
| Antonio Mecozzi | 2 |
| Cristian Antonelli | 2 |
| Domenico Ribezzo | 2 |
| Francesco Saverio Cataliotti | 2 |
| Hamid Tebyanian | 2 |
| Michael Galili | 2 |
| Tommaso Occhipinti | 2 |
| Adriano Della Frera | 1 |
| Angelo Bassi | 1 |
| Anton Ramšak | 1 |