Scaling waveguide-integrated superconducting nanowire single-photon detector solutions to large numbers of independent optical channelsOpen Access

Häußler, Matthias; Terhaar, Robin; Wolff, Martin A.; Gehring, Helge; Beutel, Fabian; Hartmann, Wladick; Walter, Nicolai; Tillmann, Max; Ahangarianabhari, Mahdi; Wahl, Michael; Röhlicke, Tino; Rahn, Hans-Jürgen; Pernice, Wolfram H.P.; Schuck,Carsten

Research article (journal) | Peer reviewed

Abstract

Superconducting nanowire single-photon detectors are an enabling technology for modern quantum information science and are gaining attractiveness for the most demanding photon counting tasks in other fields. Embedding such detectors in photonic integrated circuits enables additional counting capabilities through nanophotonic functionalization. Here we show how a scalable number of waveguide-integrated superconducting nanowire single-photon detectors can be interfaced with independent fiber optic channels on the same chip. Our plug-and-play detector package is hosted inside a compact and portable closed-cycle cryostat providing cryogenic signal amplification for up to 64 channels. We demonstrate state-of-the-art photon counting performance with up to 60 % system detection efficiency and down to 26.0 ps timing accuracy for individually addressable detectors. Our multi-channel single photon receiver offers exciting measurement capabilities for future quantum communication, remote sensing and imaging applications.

Details about the publication

JournalReview of Scientific Instruments (Rev. Sci. Instrum.)
Volume94
Issue1
Page range013103null
StatusPublished
Release year2023
Language in which the publication is writtenEnglish
KeywordsQuantum Key Distribution; Single Photon Detectors; Nanophotonics; Quantum Technology

Authors from the University of Münster

Beutel, Fabian
Gehring, Helge
Hartmann, Wladislaw
Häußler, Matthias
Pernice, Wolfram
Schuck, Carsten
Terhaar, Robin
Walter, Nicolai
Wolff, Martin Axel

Projects the publication originates from

Duration: 01/09/2016 - 31/03/2022
Type of project: Own resources project