1
program role
66
collaborators
2013–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
3 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| 2.5 GHz clocked quantum key distribution over 379 km | QCRYPT 2018 | regular | ▸Alberto Boaron, Gianluca Boso, Davide Rusca, Misael Caloz, Matthieu Perrenoud, Gaëtan Gras, Claire Autebert, Felix Bussieres, Ming-Jun Li, Daniel Nolan, Anthony Martin, Hugo Zbinden |
| Detector-device-independent quantum key distribution: From proof of principle to a high speed implementation | QCRYPT 2015 | regular | Alberto Boaron, Charles Ci Wen Lim, Anthony Martin, Gianluca Boso, Raphael Houlmann, Felix Bussieres, Robert Thew, Hugo Zbinden |
| A high-speed multi-protocol quantum key distribution transmitter based on a dual-drive modulator | QCRYPT 2013 | regular ▸ presenter | Nino Walenta, Raphael Houlmann, Hugo Zbinden |
8 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Noise‑Robust O‑Band Quantum Key Distribution at 1295.56 nm for Coexistence in WDM Networks | QCRYPT 2026 | Javier Núñez-Bon, Alberto Boaron, Damien Stucki, Robert Thew, Gianluca Boso |
Integrating Quantum Key Distribution (QKD) into optical metropolitan networks is a crucial step toward bringing quantum technologies into existing telecommunication fiber infrastructures. However, current state-of-the-art solutions still face major challenges, including their sensitivity to classical noise, especially spontaneous Raman scattering, limited transmission distances, and performance degradation under heterogeneous network conditions. In this work, we present a new QKD system operating in the O-band at 1295.56 nm, where the effect of the main noise sources is significantly reduced. Combined with narrow spectral filtering at the receiver, without the need for active temperature control, the system shows strong robustness across a wide range of dense wavelength division multiplexing scenarios, making it a practical option for real-world deployment. We validate its performance through extensive testing and demonstrate stable key generation while coexisting with different classical traffic conditions, with total launch powers of up to 17 dBm. These results represent an important step forward for the integration of QKD into existing fiber networks, supporting the path toward secure quantum communications at scale. |
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| GHz-Rate Phase-Randomized Decoy state Time-Bin QKD Source Based on a SLED Platform | QCRYPT 2026 | Shashank Kumar, Alessandro Marcomini, Loïc Millet, Towsif Taher, Raphael Houlmann, David Cabrerizo, Gianluca Boso, Marcos Curty, Robert Thew |
Phase randomization is essential for the security of practical quantum key distribution (QKD) systems. Commonly, implementations rely on laser sources (either actively phase-randomized, or gain-switched). However, at high repetition rates these show correlations, which can ultimate compromise security and performance. We present a 1.25 GHz fully phase-randomized QKD source based on a super luminescent diode (SLED) operating in the C-band as a compact and cost-effective alternative. The source generates ∼ 100 ps optical pulses with 400 ps time-bin separation, compatible with high-speed time-bin encoding. Interferometric measurements demonstrate > 99% visibility between adjacent time bins, confirming strong first-order coherence within a qubit, while the spontaneous-emission-driven nature of the SLED ensures intrinsic pulse to pulse phase randomization. The broadband architecture further enables operation across multiple ITU channels, supporting wavelength-multiplexed QKD from a single emitter. This work establishes a scalable SLED-based platform for high-speed time-bin QKD systems. |
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| Clock synchronization in time-bin quantum key distribution derived from a model of detection statistics under clock drift | QCRYPT 2026 | Loïc Millet, Robert Thew, Gianluca Boso |
Clock synchronization between the transmitter (Alice) and receiver (Bob) is essential for practical quantum key distribution (QKD) systems. In time-bin protocols, a frequency mismatch between the local clocks of Alice and Bob leads to a timing drift that broadens photon detection-time histograms, increasing the quantum bit error rate (QBER) if left uncompensated. In many practical systems this issue is mitigated by distributing a reference timing signal over a dedicated channel. However, this approach complicates the deployment of QKD in existing telecommunication networks, motivating synchronization methods that operate directly on photon detections from the quantum channel. Here, we present a lightweight synchronization algorithm for time-bin BB84 systems based on an analytical model of detection-time statistics under clock drift. The model describes how a constant frequency mismatch modifies start–stop histograms over a finite acquisition time, enabling direct estimation of the clock drift directly from detection events. This leads to a simple algorithm requiring only two consecutive histograms per update and compatible with standard hardware. We experimentally validate the method on commercial QKD systems. Laboratory tests over 100 km of fiber and under variable quantum channel attenuation demonstrate rapid convergence and low QBER, comparable to that obtained using a shared reference clock. We further demonstrate stable operation over 24 hours on a 16 km section of the Geneva Quantum Network. |
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| Time-bin Entanglement Swapping | QCRYPT 2023 | Samantha I. Davis, Rahaf Youssef, Raju Valivarthi, Lautaro Narváez, Neil Sinclair, Cristián Peña, Si Xie, Matthew D. Shaw, Panagiotis Spentzouris, Maria Spiropulu |
Quantum entanglement is a preliminary requirement for many protocols in quantum computing, communication, and sensing. Entanglement is typically achieved by having two particles created from the same source [1]. However, creating quantum networks and internet requires distributing and manipulating quantum states between remote nodes through protocols such as quantum entanglement. Here we report high-fidelity entanglement swapping using time-bin qubits, with the aim of distributing entanglement between national laboratories in the United States. References: [1] Zhang, W., Xu, D., amp; Chen, L. (2023). Polarization entanglement from parametric down-conversion with an LED pump. Physical Review Applied, 19(5). https://doi.org/10.1103/physrevapplied.19.0540 |
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| Quantum key distribution system with 2.5 GHz clock rate | QCRYPT 2017 | Alberto Boaron, Gianluca Boso, Raphael Houlmann, Charles Ci Wen Lim, Ming-Jun Li, Daniel Nolan, Hugo Zbinden |
| Amorphous MoSi SNSPDs with a low time jitter and a high detection efficiency | QCRYPT 2017 | Misael Caloz, Claire Autebert, Nuala Timoney, Matthieu Perrenoud, Markus Weiss, Christian Schönenberger, Richard Warburton, Hugo Zbinden, Felix Bussieres |
| Detector-Device-Independent QKD: Security Analysis and Fast Implementation | QCRYPT 2016 | Alberto Boaron, Raphael Houlmann, Gianluca Boso, Charles Ci Wen Lim, Anthony Martin, Hugo Zbinden |
| Continuous QKD and data encryption at up to 100 Gbit/s | QCRYPT 2013 | Hugo Zbinden, Nino Walenta, Olivier Guinnard, Raphael Houlmann, Charles Lim Ci Wen, Tommaso Lunghi, Nicolas Gisin, Andreas Burg, Jeremy Constantin, Matthieu Legré, Patrick Trinkler, Dario Caselunghe, Natalia Kulesza, Gregory Trolliet, Fabien Vannel, Pascal Junod, Olivier Auberson, Yoan Graf, Gilles Curchod, Gilles Habegger, Etienne Messerli, Christopher Portmann, Luca Henzen, Christoph Keller, Christian Pendl, Michael Mühlberghuber, Christoph Roth, Norbert Felber, Frank Gürkaynak, Daniel Schöni, Beat Muheim |
We present the results of the project QCRYPT, a collaborate effort of eight research teams in Switzerland with the ambition to produce a complete and practical fiber based QKD and high speed encryption system. For the QKD part, we put the emphasis on continuous operation with a wavelength multiplexed service channel for synchronization and distillation, efficient hardware real-time distillation, finite key security analysis and frugal authentication. For the secure high-speed encryption of large data volumes, we present a system able to multiplex up to ten 10 Gbit/s Ethernet inputs, pass the 100 Gbit/s data stream through authenticated encryption before transmitting it over an optical fiber to the decryptor. The cipher cores apply and frequently refresh the quantum keys delivered by the QKD system. |
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Committee service
| Conference | Committee | Position | Title |
|---|---|---|---|
| QCRYPT 2026 | program | member | — |
Collaborators
| Co-author | Joint talks |
|---|---|
| Gianluca Boso | 7 |
| Hugo Zbinden | 7 |
| Raphael Houlmann | 6 |
| Alberto Boaron | 5 |
| Robert Thew | 4 |
| Anthony Martin | 3 |
| Charles Ci Wen Lim | 3 |
| Felix Bussieres | 3 |
| Claire Autebert | 2 |
| Daniel Nolan | 2 |
| Loïc Millet | 2 |
| Matthieu Perrenoud | 2 |
| Ming-Jun Li | 2 |
| Misael Caloz | 2 |
| Nino Walenta | 2 |
| Alessandro Marcomini | 1 |
| Andreas Burg | 1 |
| Beat Muheim | 1 |
| Charles Lim Ci Wen | 1 |
| Christian Pendl | 1 |