10
collaborators
2021–2024
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
3 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Overcoming Noise Limitations in QKD with Quantum Privacy Amplification | QCRYPT 2024 | Philipp Sohr, Sebastian Ecker, Lukas Bulla, Rupert Ursin |
High-quality, distributed quantum entanglement is the distinctive resource for quantum communication and forms the foundation for the unequalled level of security that can be assured in quantum key distribution. While the entanglement provider does not need to be trusted, the secure key rate drops to zero if the entanglement used is too noisy. In this work, we show experimentally that QPA is able to increase the secure key rate achievable with QKD by improving the quality of distributed entanglement, thus increasing the quantum advantage in QKD. Beyond that, we show that QPA enables key generation at noise levels that previously prevented key generation. We provide a detailed characterisation of the gain in secure key rate achieved in our proof-of-principle experiment at different noise levels. The use of hyperentanglement in the field-tested polarisation and energy-time degrees of freedom enhances the efficiency of our scheme, making it an attractive option for deployment in high-loss regimes. |
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| Experimental Single-Copy Entanglement Distillation | QCRYPT 2022 | Sebastian Ecker, Philipp Sohr, Lukas Bulla, Marcus Huber, Rupert Ursin |
| A model for optimizing quantum key distribution with continuous-wave-pumped entangled-photon sources | QCRYPT 2021 | Sebastian Philipp Neumann, Thomas Scheidl, Mirela Selimovic, Matej Pivoluska, Bo Liu, Rupert Ursin |
Quantum Key Distribution (QKD) allows unconditionally secure communication based on the laws of quantum mechanics rather then assumptions about computational hardness. Optimizing the operation parameters of a given QKD implementation is indispensable in order to achieve high secure key rates. So far, there exists no model that accurately describes entanglement-based QKD with continuous-wave pump lasers. For the first time, we analyze the underlying mechanisms for QKD with temporally uniform pair-creation probabilities and develop a simple but accurate model to calculate optimal trade-offs for maximal secure key rates. In particular, we find an optimization strategy of the source brightness for given losses and detection-time resolution. All experimental parameters utilized by the model can be inferred directly in standard QKD implementations, and no additional assessment of device performance is required. Comparison with experimental data shows the validity of our model. Our results yield a tool to determine optimal operation parameters for already existing QKD systems, to plan a full QKD implementation from scratch, and to determine fundamental key rate and distance limits of given connections. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Rupert Ursin | 3 |
| Lukas Bulla | 2 |
| Philipp Sohr | 2 |
| Sebastian Ecker | 2 |
| Bo Liu | 1 |
| Marcus Huber | 1 |
| Matej Pivoluska | 1 |
| Mirela Selimovic | 1 |
| Sebastian Philipp Neumann | 1 |
| Thomas Scheidl | 1 |