28
collaborators
2017–2024
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
3 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Twin Field Quantum Key Distribution Across National Scale Telecommunication Infrastructure | QCRYPT 2024 | regular | Yuen San Lo, Adam Brzosko, Robert I Woodward, Matthew S. Winnel, Thomas Roger, James Dynes, Piotr Rydlichowski, Domenico Vicinanza, Guy Roberts, Andrew Shields |
Quantum Communications (QC) harness quantum mechanical phenomena such as superposition and entanglement to enhance information transfer between remote nodes. Coherent quantum communications refer to QC schemes relying on maintaining optical coherence between nodes for successful execution. These schemes typically involve single photon interference between optical fields generated by distant parties and represent a cornerstone of a promising architecture of the quantum internet. Despite their significant potential, scientific and technical hurdles - including optical coherence maintenance, integrating high-performance single-photon detectors, and precise stabilisation and synchronisation - have prevented the implementation of coherent QC over existing telecommunication infrastructure. Here we present the first realisation of a coherent QC fully integrated into standard telecommunication infrastructure over a link connecting the German cities of Frankfurt and Kehl. The implemented scheme is the Twin Field Quantum Key Distribution (QKD) protocol, enabling the distribution of a shared secret key for encryption at a rate of 110 bit/s over a highly asymmetric 254 km link. This result, obtained with a system featuring measurement-device-independent properties, marks the longest installed QKD implementation utilising non-cryogenic cooled detectors and was enabled by the QC system architecture we developed and by our approach to phase stabilisation, which involves active out-of-band phase stabilisation and avalanche photodiodes for single photon detection. This achievement, not only represents a milestone for practical quantum communications but also validates the compatibility of coherent QC with current telecommunication infrastructure, supporting the feasibility of a phase-based architecture for the quantum internet. |
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| Experimental repeater-like quantum communications over 600 km of optical fibre with dual-band phase stabilisation | QCRYPT 2021 | invited ▸ presenter | — |
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Experimental twin field quantum key distribution beyond the repeaterless secret key capacity bound
Best Student Paper Award (Experiment) — Mariella Minder & Mirko Pittaluga
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QCRYPT 2019 | regular | Mariella Minder, George Roberts, Marco Lucamarini, James Dynes, Zhiliang Yuan, Andrew Shields |
We demonstrate the first experimental overcoming of the repeaterless secret key capacity (PLOB) bound through the implementation of the Twin Field Quantum Key Distribution (TF-QKD) protocol. We distribute secret keys at record channel losses (> 90 dB). We assess the prospects for real-world implementation of TF-QKD. |
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4 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Coherent phase fluctuations suppression for real-world twin-field quantum key distribution | QCRYPT 2021 | Ivo Pietro Degiovanni, Cecilia Clivati, Alice Meda, Simone Donadello, Salvatore Virzi’, Marco Genovese, Filippo Levi, Alberto Mura, Davide Calonico, Zhiliang Yuan, Andrew Shields, Marco Lucamarini |
Quantum key distribution (QKD) ensures the sharing of secret cryptographic keys between distant entities (typically called Alice and Bob), whose intrinsic security is guaranteed by the laws of nature [1–3]. Besides pioneering experiments involving satellite transmission [4], the challenge is the integration of this technology in telecommunication fiber networks, in particular in long haul segments [5–11]. The longest achievable communication distance is limited by the channel loss which increases exponentially with the fiber length and noise in the deployed single photon detector. The secure QKD key rate decreases exponentially with the channel fiber length. Although the communication distance could be extended using quantum repeaters, the related research is still at a proof-of-principle level [12]. Presently the widely adopted solution is the exploitation of trusted nodes, whose security represents however a significant technical issue. An innovative approach that overcomes, at least partially, the need for trusted node is represented by the recently proposed QKD protocol dubbed twin-field QKD (TF-QKD) [13]. In TF-QKD, the information is encoded on dim laser pulses generated at distant Alice and Bob terminals and sent through optical fiber over half of the entire communication distance to the central node, Charlie, where they interfere. For this reason, the TF-QKD has weaker dependence on channel losses, essentially doubling the communication distance with respect to the conventional prepare-and-measure QKD solution. TF-QKDhas been proved secure against general attacks (see e.g. [14–18]), but its implementation is challenging as the optical pulses sent by Alice and Bob are required to be phase-coherent and preserve coherence when reaching Charlie after travelling the long fiber paths. While phase coherence can be achieved by phase-locking the two QKD lasers in Alice and Bob to a common reference laser transmitted through a service channel, uncorrelated phase changes due to the length and refractive index fluctuations in the long optical fibers still remain and will reduce the visibility of the interference measurement. In the TF-QKD proof-of-principle experiments [19–26], this effect was mitigated by interleaving the QKD frames with classical transmission frames that were used to periodically realign the phases of interfering pulses. Here we present an alternative solution derived from the metrological research community, more precisely from atomic clocks comparison technology. Specifically, transmission of coherent laser radiation over thousand-kilometer-long fibers is exploited for the comparison of distant atomic clocks at the highest accuracy [27–32]. In this case phase fluctuations in long fiber also need to be addressed, othewise they would substantially degrade the comparison results. Precise comparison among these atomic clocks are made possible by the use of ultra-stable lasers and the active cancellation of the noise introduced by connecting fibers. Here we demonstrate that this technique can be successfully adapted into a TF-QKD setup. More specifically, we designed and developed an apparatus suitable for actively cancelling phase fluctuations of both the lasers and of the connecting fibers in a TF-QKD setup. This is achieved by transmitting an additional sensing laser light at a slightly different wavelength in the same fiber as the QKD dim pulses. In Charlie, this sensing laser is used for the fiber optical length stabilisation. We show that this multiplexed solution can be properly tuned in order to avoid a sizeable impact on the number of background photons observed by the single-photon detectors in the QKD channels, allowing simultaneous key streaming and channels stabilization, ensuring longer duty-cycles of the QKD process and a tighter control of the optical phase on long-haul deployed fibers. Furthermore, we tested our solution in a real-world network where the net losses between Alice and Bob are as high as 65 dB, resulting here in a distance of 206 km, or equivalent at 325 km on a fiber haul at common nominal losses of 0.2 dB/km [33]. References [1] Bennett, C. H. & Brassard, G. Quantum cryptography: public key distribution and coin tossing. Theor. Comput. Sci. 560, 7–11 (2014). [2] Scarani, V. et al. The security of practical quantum key distribution. Rev. Mod. Phys. 81, 1301 (2009). [3] Kwong Lo, H., Curty, M. & Tamaki, K. Secure quantum key distribution. Nature Photonics 8, 595-604 (2014). [4] Liao, S-K., Cai, W-Q., Pan, J-W. Satellite-to-ground quantum key distribution, Nature 549, 43-47 (2017) [5] Peev, M. et al. The SECOQC quantum key distribution network in Vienna, New J. Phys. 11, 075001 (2009). [6] Sasaki, M. et al. Field test of quantum key distribution in the Tokyo QKD Network. Opt. Expr. 19, 10387 (2011). [7] Dynes, J. F. et al. Cambridge quantum network. npj Quantum Inf. 5, 101 (2019). [8] Shimizu K., et al. Performance of long-distance quantum key distribution over 90-km optical links installed in a field environment of Tokyo metropolitan area. J. Lightwave Technol. 32,, 141-51 (2014). [9] Bacco, D. et al. Field trial of a three-state quantum key distribution scheme in the Florence metropolitan area. EPJ Quantum Technol.6, 5 (2019). [10] Choi, I. et al. Field trial of a quantum secured 10 Gb/s DWDM transmission system over a single installed fiber. Opt. Expr 22, 23121-23128 (2014). [11] Dixon, A. R. et al. Quantum key distribution with hacking countermeasures and long term field trial, Sci. Rep. 7, 7583 (2017). [12] Xu, F., Ma, X., Zhang, Q., Lo, H-K. & Pan, J-W. Secure quantum key distribution with realistic devices. Rev. Mod. Phys. 92, 025002 (2020) [13] Lucamarini, M., Yuan, Z. L., Dynes, J. F., Shields, A. J. Overcoming the rate-distance limit of quantum key distribution without quantum repeaters. Nature 557, 400-403 (2018). [14] Ma, X. Zeng, P., & Zhou, H. Phase-Matching Quantum Key Distribution. Phys. Rev. X 8, 031043 (2018). [15] Wang, X-B., Yu, Z-W. & Hu, X-L. Twin-field quantum key distribution with large misalignment error. Phys. Rev. A 98, 062323 (2018). [16] Lin J. & Lutkenhaus, N. Simple security analysis of phase-matching measurement-device-independent quantum key distribution. Phys. Rev. A 98, 042332 (2018); [17] Curty, M., Azuma, K. & Lo, H.-K. Simple security proof of twin-field type quantum key distribution protocol. npj Quantum Inf. 5, 64 (2019) [18] Yin, H-L. & Chen, Z-B. Finite-key analysis for twin-field quantum key distribution with composable security, Sci Rep. 9, 17113 (2019). [19] Wang, S. et al. Beating the Fundamental Rate-Distance Limit in a Proof-of-Principle Quantum Key Distribution System. Phys. Rev. X 9, 021046 (2019) [20] Minder, M. et al. Experimental quantum key distribution beyond the repeaterless secret key capacity. Nature Photon. 13, 334-338 (2019) [21] X. Zhong, Hu, J., Curty, M., Qian, L. & Lo, H-K. Proof-of-Principle Experimental Demonstration of Twin-Field Type Quantum Key Distribution. Phys. Rev. Lett. 123, 100506 (2019) [22] Chen, J-P. et al. Sending-or-Not-Sending with Independent Lasers: Secure Twin-Field Quantum Key Distribution over 509 km. Phys. Rev. Lett. 124, 070501 (2020). [23] Fang, X-T., et al. Implementation of quantum key distribution surpassing the linear rate transmittance bound. Nature Photon 14, 422-425 (2020). [24] Pittaluga M, et al., 600 km repeater-like quantum communications with dual-band stabilisation, arXiv:2012.15099 (2020) [25] Hui Liu et al., Field Test of Twin-Field Quantum Key Distribution through Sending-or-Not-Sending over 428 km, arXiv:2101.00276 (2021) [26] Jiu-Peng Chen et al., Twin-Field Quantum Key Distribution over 511 km Optical Fiber Linking two Distant Metropolitans, arXiv:2102.00433 (2021) [27] Clivati, C. et al. Optical frequency transfer over submarine fiber links. Optica 5, 893 (2018). [28] Clivati, C. et al. Common-clock very long baseline interferometry using a coherent optical fiber link. Optica 7, 1031-1037 (2020) [29] Grotti, J. et al. Geodesy and metrology with a transportable optical clock. Nature Physics 14, 437-441 (2018). [30] Lisdat, C. et al. A clock network for geodesy and fundamental science. Nat.Comm. 7, 12443 (2016). [31] Delva, P. et al. Test of Special Relativity Using a Fiber Network of Optical Clocks, Phys. Rev. Lett. 118, 221102 (2017). [32] Guena, J. First international comparison of fountain primary frequency standards via a long distance optical fiber link. Metrologia 54, 348 (2017). [33] Clivati, C. et al. Coherent phase transfer for real-world twin-field quantum key distribution, arXiv:2012.15199 (2021) |
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| Measurement-device-independent quantum key distribution with directly modulated lasers | QCRYPT 2021 | Yuen San Lo, Robert I Woodward, Mariella Minder, Taofiq K Paraiso, Marco Lucamarini, Zhiliang Yuan, Andrew Shields |
We demonstrate a simple and compact MDI-QKD system design based on optical injection locking and gain-switching techniques, capable of directly encoding phase-modulated time-bin bits. Our results improve upon the state-of-the-art key rates by an order of magnitude. |
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| Patterning-effect-free intensity modulator for decoy-state quantum key distribution | QCRYPT 2018 | George Roberts, Mariella Minder, James Dynes, Zhiliang Yuan, Marco Lucamarini, Andrew Shields |
| Three-observer Bell inequality violation on a two-qubit entangled state | QCRYPT 2017 | Matteo Schiavon, Luca Calderaro, Giuseppe Vallone, Paolo Villoresi |
Collaborators
| Co-author | Joint talks |
|---|---|
| Andrew Shields | 5 |
| Marco Lucamarini | 4 |
| Zhiliang Yuan | 4 |
| James Dynes | 3 |
| Mariella Minder | 3 |
| George Roberts | 2 |
| Robert I Woodward | 2 |
| Yuen San Lo | 2 |
| Adam Brzosko | 1 |
| Alberto Mura | 1 |
| Alice Meda | 1 |
| Cecilia Clivati | 1 |
| Davide Calonico | 1 |
| Domenico Vicinanza | 1 |
| Filippo Levi | 1 |
| Giuseppe Vallone | 1 |
| Guy Roberts | 1 |
| Ivo Pietro Degiovanni | 1 |
| Luca Calderaro | 1 |
| Marco Genovese | 1 |