15
collaborators
2020–2020
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
1 Poster
| Title | Conference | Co-authors |
|---|---|---|
| Parallelizing Single-Photon Detection for Ultra-Fast Quantum Key Distribution | QCRYPT 2020 | Matthias Häußler, Martin A. Wolff, Fabian Beutel, Helge Gehring, Nicolai Walter, Wladick Hartmann, Max Tillmann, Michael Wahl, Tino Röhlicke, Andreas Bülter, Doreen Wernicke, Nicolas Perlot, Jasper Rödiger, Wolfram H.P. Pernice, Carsten Schuck |
Emerging quantum technologies, such as quantum key distribution, increase the demand for reliable tools that enable single-photon generation, manipulation and sensing on an increasingly large scale. In the framework of integrated photonics, these needs can be fulfilled by patterning highly stable photonic devices on monolithic silicon chips in CMOS compatible processes. In this work we show how advanced single-photon detection capabilities are achieved on a silicon chip, realizing a 4x4 array of waveguide-integrated superconducting nanowire single-photon detectors (SNSPDs). Our detectors are fabricated from highly uniform superconducting NbTiN thin films in a U-shape geometry atop of silicon nitride strip waveguides [1]. The nanophotonic circuitry is interfaced with scalable 3D polymeric out-of-plane fiber-to-chip couplers [2] featuring high broadband transmission in the telecom regime. In order to address each detector individually via a separate fiber-optic channel, we precisely align a 16-channel 2D fiber array to the 4x4 coupler matrix. We evaluate the performance of our waveguide-integrated SNSPD array in a cost-efficient closed-cycle cryostat at 3.5 K. We find dark count rates below 10 Hz combined with a superior system detection efficiency of up to 50 % at 30 MHz count rate for telecom-wavelength photons. In addition, we achieve 120 ps timing jitter with a simple two-stage room-temperature amplification approach. Our detector arrays pave the way for parallelized multi-channel single-photon detection and will therewith enable ultra-fast quantum key distribution. Furthermore, our approach allows for integrating sophisticated nanophotonic devices with waveguide-coupled single-photon detectors providing additional variability and functionality. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Andreas Bülter | 1 |
| Carsten Schuck | 1 |
| Doreen Wernicke | 1 |
| Fabian Beutel | 1 |
| Helge Gehring | 1 |
| Jasper Rödiger | 1 |
| Martin A. Wolff | 1 |
| Matthias Häußler | 1 |
| Max Tillmann | 1 |
| Michael Wahl | 1 |
| Nicolai Walter | 1 |
| Nicolas Perlot | 1 |
| Tino Röhlicke | 1 |
| Wladick Hartmann | 1 |
| Wolfram H.P. Pernice | 1 |