82
collaborators
2013–2024
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
4 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| QUBE - A CubeSat mission to demonstrate new building blocks for satellite based quantum key distribution | QCRYPT 2024 | regular | Jonas Pudelko, Michael Auer, Adomas Baliuka, Ömer Bayraktar, Moritz Birkhold, Peter Freiwang, Matthias Grünefeld, Roland Haber, Martin Hutterer, Janko Janusch, Lukas Knips, Norbert Lemke, Christoph Marquardt, Florian Moll, Benjamin Rödiger, Klaus Schilling, Christopher Schmidt, Bhardwaj Shastri, Michael Steinberger, Karina Szych, Joost Vermeer, Paul Wagner, Harald Weinfurter |
The CubeSat mission QUBE aims to evaluate novel, miniaturized Quantum Key Distribution (QKD) building blocks in space including an optical downlink to an optical ground station. The mission will be launched in July 2024 and will provide important insights into new technology which potentially could form the backbone of a cost-effective satellite based QKD system on a global scale. |
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| Composable discrete-modulated continuous-variable QKD and its application to urban atmospheric channels | QCRYPT 2024 | regular | Kevin Jaksch, Thomas Dirmeier, Jan Schreck, Yannick Weiser, Stefan Richter, Ömer Bayraktar, Bastian Hacker, Conrad Rößler, Andrej Kržič, Markus Rothe, Markus Leipe, Nico Döll, Christopher Spiess, Matthias Goy, Stefan Petscharning, Thomas Grafenauer, Bernhard Ömer, Christoph Pacher, Florian Kanitschar, Twesh Upadhyaya, Jie Lin, Norbert Lütkenhaus, Gerd Leuchs, Christoph Marquardt |
In our work, we developed an optical CVQKD system that uses polarization-based QPSK modulation designed for atmospheric quantum communication and a corresponding post-processing pipeline including error correction and privacy amplification. In a first laboratory experiment, we applied the security statement of a recently published security proof to calculate composable key rates with a total security parameter of ε = 1e-10 in the finite size regime against i.i.d. collective attacks. We also used the post-processing pipeline to study the effect of error correction and frame errors on the actual key extraction in a finite-size system – finding that the common approach of going to high frame errors to increase the ECC efficiency β does not optimize the extractable key length.Furthermore, we deployed the system over an ad-hoc atmospheric channel of 1.7 km in Mai 2023 in the city of Jena, Germany. In a first proof-of-principle study, we were able to apply the full optical and post-processing pipeline to extract pseudo-asymptotic keys and discuss the further steps necessary to move the system to the finite-size regime. To the best of our knowledge, this is the first CVQKD demonstration over a real atmospheric channel combining both the new class of DMCVQKD security proofs without Gaussian optimality and error correction steps. |
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| Quantum-limited Measurements of Signals from a Satellite in Geostationary Earth Orbit | QCRYPT 2016 | regular | Dominique Elser, Kevin Günthner, Birgit Stiller, Ömer Bayraktar, Christian R. Müller, Karen Saucke, Daniel Tröndle, Frank Heine, Stefan Seel, Peter Greulich, Herwig Zech, Björn Gütlich, Ines Richter, Rolf Meyer, Christoph Marquardt, Gerd Leuchs |
| Trojan-horse attacks on practical continuous-variable quantum key distribution systems | QCRYPT 2014 | regular ▸ presenter | Nitin Jain, Birgit Stiller, Paul Jouguet, Sébastien Kunz-Jacques, Eleni Diamanti, Christoph Marquardt, Gerd Leuchs |
12 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Demonstration of free-space discrete-modulated continuous-variable QKD using real error correction codes and finite-size effects | QCRYPT 2023 | Kevin Jaksch, Thomas Dirmeier, Yannick Weiser, Stefan Richter, Ömer Bayraktar, Bastian Hacker, Conrad Rößler, Stefan Petscharning, Thomas Grafenauer, Bernhard Ömer, Christoph Pacher, Florian Kanitschar, Twesh Upadhyaya, Jie Lin, Norbert Lütkenhaus, Gerd Leuchs, Christoph Marquardt |
Besides discrete-variable QKD, where single photon detection is used, continuous-variable (CV) protocols are using homodyne detection and are thus promising to be compatible with existing classical coherent communication technology. Originally, the research on CV QKD protocols mostly focused on Gaussian modulation (see review [1]), where one assumes that Alice can continuously displace coherent states according to a 2D Gaussian distribution. This modulation allows the security proofs to take advance of Gaussian optimality conditions, but experimental implementations can only reach this pattern up to some finite discretization. Another approach is to directly use a discrete-modulated (DM) CV QKD protocol. Here, Alice is required to prepare a finite number of displaced coherent states, aiming for a higher experimental simplicity, with the drawback of higher theoretical complexity. Recently, new security proofs such as [2] and corresponding experiments [3,4] could show the feasibility of systems using quadrature amplitude modulation (QAM) with 64 and 256 displaced states. However, the security proof was limited to the asymptotic regime and since the experiments did not use implemented error correction codes, one could only estimate the achievable key rates, but could not generate the secret key itself. In this poster, we demonstrate experiments with a protocol with a smaller constellation size of four coherent states that share the same amplitude but are shifted by 90° in phase (QPSK modulation). We exploit a recently published security proof providing tight secret key rates for collective attacks even in the finite size regime [5]. Furthermore, we show that the QPSK data is compatible with our implemented low density parity check (LDPC) codes for binary symmetric channels. This allows us to perform the full QKD protocol from experimental quantum state exchange to classical post processing and to generate a secret key shared between Alice and Bob. For this purpose, we use a laboratory system based on polarization encoding in the Stokes parameters which is equivalent to a QPSK pattern in phase space. This scheme is designed to cope with the challenges of a turbulent atmospheric channel. While the fluctuating nature of such a channel can be targeted by sub-binning the transmission channels [6], the atmosphere is in general non-birefringent, allowing for atmospheric quantum communications [7]. [1] F. Laudenbach et al., Adv. Quantum Technol. 1, 1800011 (2018) [2] A. Denys et al., Quantum 5, 540 (2021) [3] F. Roumestan et al., arXiv:2207.11702 (2022) [4] Y. Pan et al., Optics Letters 47, 3307-3310 (2022) [5] F. Kanitschar et al., arXiv:2301.08686v1 (2023) [6] V. Usenko et al., New J. Phys. 14, 093048 (2012) [7] B. Heim et al., New J. Phys. 16, 113018 (2014) |
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| Towards quantum communication inside existing fiber-telecommunication networks | QCRYPT 2022 | Alexandra Popp, Thomas Dirmeier, Florian Sedlmeir, Christoph Marquardt |
| Gigahertz quantum signatures compatible with telecommunication technologies | QCRYPT 2017 | Matthew Thornton, Callum Croal, Christoph Marqurdt, Gerd Leuchs, Natalia Korolkova |
| Continuous-Variable Quantum Communication at 10 GHz and Compatible with Telecom Networks | QCRYPT 2016 | Birgit Stiller, Kevin Jaksch, Kevin Günthner, Christian Peuntinger, Jonas Geyer-Ramsteck, Dominique Elser, Christoph Pacher, Christoph Marquardt, Gerd Leuchs |
| Free-space quantum key distribution at a wavelength of 10.6 µm using continuous variables | QCRYPT 2015 | Kevin Jaksch, Tobias Frank, Jonas Geyer-Ramsteck, Christian Peuntinger, Birgit Stiller, Ulrich Vogl, Dominique Elser, Christoph Marquardt, Gerd Leuchs |
| Towards continuous-variable quantum key distribution at GHz rates | QCRYPT 2015 | Birgit Stiller, Kevin Jaksch, Nitin Jain, Christian Peuntinger, Kevin Günthner, Tobias Röthlingshöfer, Dominique Elser, Christoph Marquardt, Gerd Leuchs |
| Quantitative analysis of Trojan-horse attacks on practical continuous-variable quantum key distribution systems | QCRYPT 2015 | Birgit Stiller, Nitin Jain, Paul Jouguet, Sébastien Kunz-Jacques, Eleni Diamanti, Christoph Marquardt, Gerd Leuchs |
| Development of a high-speed integrated quantum random number generator employing vacuum fluctuations | QCRYPT 2015 | Momtchil Peev, Christoph Pacher, Philipp Grabenweger, Bernhard Schrenk, Dominique Elser, Christoph Marquardt, Gerd Leuchs |
| Quantification of Effective Entanglement in an Atmospheric Channel | QCRYPT 2014 | Christian Peuntinger, Bettina Heim, Nathan Killoran, Christoffer Wittmann, Christoph Marquardt, Gerd Leuchs |
| Towards a high-speed integrated quantum random number generator based on continuous variables | QCRYPT 2014 | Christoph Pacher, Momtchil Peev, Bernhard Schrenk, Christoph Varga, Philipp Grabenweger, Bettina Heim, Christoph Marquardt, Gerd Leuchs |
| Optimal working points for continuous-variable quantum channels | QCRYPT 2013 | Christoffer Wittmann, Nitin Jain, Nathan Killoran, Norbert Lütkenhaus, Christoph Marquardt, Gerd Leuchs |
How well does a quantum channel preserve the quantum properties of the transmitted quantum states? We investigate this question in the context of a continuous-variable quantum communication system using the framework of effective entanglement. This framework allows for a quantification of the transmitted entanglement using only coherent states and the well-established double homodyne detection. Experimentally, we investigated fiber channels up to a length of 40 km for a wide range of coherent state amplitudes. Additionally, we induced phase noise to study the quantum-classical transition within the framework. From the measured parameters we are able to identify the optimal point of operation for each quantum channel with respect to the rate of transmitted entanglement. We note that the benchmarking procedure is independent of the physical implementation of the quantum channel and would therefore be a promising candidate for benchmarking of future quantum technologies. |
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| Quantum hacking: demonstrating feasibility of a Trojan-horse attack on a commercial QKD system | QCRYPT 2013 | Nitin Jain, Elena Anisimova, Christoffer Wittmann, Vadim Makarov, Christoph Marquardt, Gerd Leuchs |
We propose and experimentally demonstrate the tools to implement a Trojan-horse attack to break the security of the commercial quantum cryptosystem ‘Clavis2’ from ID Quantique while it is operating the Scarani-Acin-Ribordy-Gisin 2004 (SARG04) protocol. Eve launches a bright optical pulse into Bob and analyses the back-reflections that arise from different components and interfaces in Bob. By homodyning the weak coherent state in a suitable back-reflected pulse with an appropriately delayed local oscillator, Eve can get information about Bob’s basis choice with high accuracy. Since the basis choice is essentially the raw secret key in SARG04 protocol, Eve could in principle know the whole key. However, a problem that needs to be circumvented is that of afterpulsing caused by the bright Trojan-horse pulses impinging on the avalanche photodiode based single-photon detectors in Bob. This increases the dark counts or false clicks, thus directly translating into a higher quantum bit error rate (QBER) that could expose Eve. Nonetheless, we show that there exist attack regimes that allow Eve to get a partial information of the key without being discovered, thus breaching the security of the QKD system. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Christoph Marquardt | 15 |
| Gerd Leuchs | 14 |
| Birgit Stiller | 6 |
| Christoph Pacher | 5 |
| Dominique Elser | 5 |
| Kevin Jaksch | 5 |
| Nitin Jain | 5 |
| Christian Peuntinger | 4 |
| Ömer Bayraktar | 4 |
| Christoffer Wittmann | 3 |
| Kevin Günthner | 3 |
| Norbert Lütkenhaus | 3 |
| Thomas Dirmeier | 3 |
| Bastian Hacker | 2 |
| Bernhard Schrenk | 2 |
| Bernhard Ömer | 2 |
| Bettina Heim | 2 |
| Conrad Rößler | 2 |
| Eleni Diamanti | 2 |
| Florian Kanitschar | 2 |