14
collaborators
2021–2021
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
1 Poster
| Title | Conference | Co-authors |
|---|---|---|
| A Quantum Key Distribution Testbed using a Plug-and-Play Telecom-wavelength Single-Photon Source | QCRYPT 2021 | Timm Kupko, Lucas Rickert, Jan Große, Nicole Srocka, Sven Rodt, Anna Musial, Kinga Zolnacz, Pawel Mergo, Kamil Dybka, Waclaw Urbanczyk, Grzegorz Sek, Sven Burger, Stephan Reitzenstein, Tobias Heindel |
Deterministic solid-state quantum light sources are key building blocks in photonic quantum technologies. While several proof-of-principle experiments of quantum communication using such sources have been realized, all of them required bulky setups. Here, we evaluate for the first time the performance of a compact and stand-alone fiber-coupled single-photon source emitting in the telecom O-band (1321nm) for its application in quantum key distribution (QKD). For this purpose, we developed a compact 19” rack module including a deterministically fiber-coupled quantum dot single-photon source integrated into a Stirling cryocooler, a pulsed diode laser for driving the quantum dot, and a fiber-based spectral filter. We further employed this compact quantum light source in a QKD testbed designed for polarization coding via the BB84 protocol resulting in g20 = 0.10+\-0.01 and a raw key rate of up to 4.72(13)kHz using an external laser for excitation. In this setting we investigate the achievable performance expected in full implementations of QKD. Using 2D temporal filtering on receiver side, we evaluate optimal parameter settings for different QKD transmission scenarios taking also finite key size effects into account. Using optimized parameter sets for the temporal acceptance time window, we predict a maximal tolerable loss of 23.19dB. Finally, we compare our results to previous QKD systems using quantum dot single-photon sources. Our study represents an important step forward in the development of fiber-based quantum-secured communication networks exploiting sub-Poissonian quantum light sources. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Anna Musial | 1 |
| Grzegorz Sek | 1 |
| Jan Große | 1 |
| Kamil Dybka | 1 |
| Kinga Zolnacz | 1 |
| Lucas Rickert | 1 |
| Nicole Srocka | 1 |
| Pawel Mergo | 1 |
| Stephan Reitzenstein | 1 |
| Sven Burger | 1 |
| Sven Rodt | 1 |
| Timm Kupko | 1 |
| Tobias Heindel | 1 |
| Waclaw Urbanczyk | 1 |