23
collaborators
2024–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
2 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Continuous-variable quantum communication over hybrid channels | QCRYPT 2026 | regular | Adnan A.E. Hajomer, Huy Q Nguyen, Ulrik Lund Andersen, Tobias Gehring, Edoardo Rossi, Yoann Piétri, Marco Avesani, Francesco Vedovato, Giuseppe Vallone, Paolo Villoresi, Ivan Derkach, Vladyslav Usenko |
Quantum communication is advancing toward large-scale quantum networks, with quantum key distribution (QKD) serving as a key driving technology. However, seamless interoperability between fiber-based and free-space links remains a major challenge for heterogeneous quantum networks. Here we report, to the best of our knowledge, the first continuous-variable QKD (CV-QKD) system distributing secret keys using both coherent and squeezed states over a hybrid channel composed of a 620m free-space link followed by 2km of optical fiber, corresponding to a total loss of 20 dB. Daylight operation is enabled by intrinsic mode filtering provided by a locally generated local oscillator, eliminating the need for complex spectral or spatial filtering. In addition, we introduce an optimized binning strategy that mitigates free-space transmittance fluctuations, resulting in an average of 45% increase in the secure key rate. These results demonstrate the feasibility of CV-QKD across hybrid optical channels and highlight its potential as a plug-and-play solution for heterogeneous quantum networks integrating fiber and free-space infrastructure. |
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| High-Performance Laser Written Heterodyne Receiver for Photonic Quantum Information Processing | QCRYPT 2026 | regular | Tommaso Bertapelle, Andrea Peri, Giulio Gualandi, Giacomo Corrielli, Yoann Piétri, Davide Giacomo Marangon, Giuseppe Vallone, Paolo Villoresi, Roberto Osellame, Marco Avesani |
Continuous‑Variable Quantum Key Distribution (CV‑QKD) and Quantum Random Number Generation (CV‑QRNG) are crucial technologies relying on shot‑noise‑limited coherent detection to enable secure communication and high‑speed randomness generation. Integrated photonics plays a central role in advancing these technologies, offering compact, scalable, and efficient implementations. In this work, we introduce Femtosecond Laser Micromachining (FLM) on borosilicate glass as a novel platform for Photonic Integrated Circuits (PICs) tailored to coherent detection in quantum information processing. Using off‑chip detectors, we exploit the versatility of FLM to realize a PIC designed for CV‑QKD and CV‑QRNG. The device features fully tunable optical components, low insertion loss ($\leq$ 1.28 dB), polarization‑insensitive operation, and a Common‑Mode Rejection Ratio (CMRR) exceeding 73 dB. These capabilities enable the experimental demonstration of a Source‑device‑Independent CV‑QRNG with a secure rate of 42.74 Gbps and a QPSK‑based CV‑QKD system achieving a 3.2 Mbit/s secret key rate. Our results establish FLM as a promising integrated‑photonics platform for scalable, high‑performance quantum communication systems. |
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3 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Simple Semi-Device-Independent Randomness Generation Based on Photon-Number Constraints | QCRYPT 2026 | Tommaso Bertapelle, Andrea Peri, Yoann Piétri, Matías R. Bolaños, Giuseppe Vallone, Paolo Villoresi, Marco Avesani, Carles Roch i Carceller, Armin Tavakoli |
Quantum Random Number Generators (QRNGs) are essential components for modern cryptography, as they are a practical source of true randomness, without which the security of such protocols cannot be guaranteed. Among the proposed schemes, Semi-Device-Independent QRNGs (SDI-QRNGs) based on photon-number constraints offer an appealing balance of security, speed, and experimental simplicity, but demonstrations have so far focused mainly on binary encoding and conditional min‑entropy certification. In this work, we report the first experimental implementation of a Continuous‑Variable SDI‑QRNG in a prepare‑and‑measure configuration building on the SDP‑based (Semi-Definite Programming) framework of Ref.~\cite{carceller2025}. This approach allows us to directly lower‑bound the conditional Shannon entropy, employ more complex modulation formats, and apply entropy‑accumulation techniques beyond the i.i.d. assumption. The experiment combines a low-loss integrated photonic heterodyne receiver with a simple transmitter built from commercial components, generating coherent‑state Quadrature-Phase-Shift-Keying (QPSK) modulation, to preserve experimental practicality while enabling high‑speed operation. |
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| Wavelength-Division Multiplexing of Independent CV- and DV-QKD Systems over Shared Fiber and Daylight Free-Space Links | QCRYPT 2026 | Edoardo Rossi, Matías R. Bolaños, Francesco Vedovato, Thomas Liege, Eleni Diamanti, Giuseppe Vallone, Paolo Villoresi, Yoann Piétri, Marco Avesani |
We report, to the best of our knowledge, the first experimental demonstration of wavelength-division multiplexing between independent continuous-variable (CV) and discrete-variable (DV) quantum key distribution (QKD) systems operating simultaneously on the same optical link. We validate coexistence over a fiber and a daylight free-space channel, benchmarking the Secret Key Rate (SKR) versus channel attenuation while both systems operate simultaneously. We observe the expected CV-DV complementarity, with CV-QKD providing higher SKR at low loss and DV-QKD becoming advantageous in the high-loss regime. In free-space daylight, both systems sustain Mbit/s key rates under atmospheric fluctuations. In all scenarios analyzed, simultaneous operation introduces negligible multiplexing-induced penalty. These results provide a validation of hybrid CV-DV architectures for heterogeneous quantum communication infrastructures, where high-throughput metropolitan users and long-reach links can be simultaneously served on the same physical channel. |
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| Hybrid encoder for discrete and continuous variable QKD | QCRYPT 2024 | Tommaso Bertapelle, Marco Avesani, Giuseppe Vallone, Paolo Villoresi |
We present a versatile hybrid encoder for quantum key distribution that supports both discrete variable (DV) and continuous variable (CV) protocols. The encoder, based on an iPOGNAC modulator, utilizes commercial off-the-shelf components and can be reconfigured for efficient polarization modulation in DV protocols or polarization-independent phase modulation in CV protocols. This innovative design enhances flexibility, enabling the selection of the most efficient protocol based on link parameters. We experimentally realized the proposed device and tested it with both DV and CV receivers to demonstrate its performance. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Giuseppe Vallone | 5 |
| Marco Avesani | 5 |
| Paolo Villoresi | 5 |
| Yoann Piétri | 4 |
| Tommaso Bertapelle | 3 |
| Andrea Peri | 2 |
| Edoardo Rossi | 2 |
| Francesco Vedovato | 2 |
| Matías R. Bolaños | 2 |
| Adnan A.E. Hajomer | 1 |
| Armin Tavakoli | 1 |
| Carles Roch i Carceller | 1 |
| Davide Giacomo Marangon | 1 |
| Eleni Diamanti | 1 |
| Giacomo Corrielli | 1 |
| Giulio Gualandi | 1 |
| Huy Q Nguyen | 1 |
| Ivan Derkach | 1 |
| Roberto Osellame | 1 |
| Thomas Liege | 1 |