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Single-Photon Detectors on Arbitrary Photonic Substrates

  • Max Tao
  • , Hugo Larocque
  • , Samuel Gyger
  • , Marco Colangelo
  • , Owen Medeiros
  • , Ian Christen
  • , Hamed Sattari
  • , Gregory Choong
  • , Yves Petremand
  • , Ivan Prieto
  • , Yang Yu
  • , Stephan Steinhauer
  • , Gerald L. Leake
  • , Daniel J. Coleman
  • , Amir H. Ghadimi
  • , Michael L. Fanto
  • , Val Zwiller
  • , Dirk Englund
  • , Carlos Errando-Herranz
  • Massachusetts Institute of Technology
  • KTH Royal Institute of Technology
  • CSEM SA
  • Raith America Inc.
  • SUNY Polytechnic Institute
  • Air Force Research Laboratory
  • University of Münster
  • Delft University of Technology

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

Abstract

Detecting nonclassical light is a central requirement for photonics-based quantum technologies. Unrivaled high efficiencies and low dark counts have positioned superconducting nanowire single-photon detectors (SNSPDs) as the leading detector technology for integrated photonic applications. However, a central challenge lies in their integration within photonic integrated circuits, regardless of material platform or surface topography. Here, we introduce a method based on transfer printing that overcomes these constraints and allows for the integration of SNSPDs onto arbitrary photonic substrates. With a kinetically controlled elastomer stamp, we transfer suspended SNSPDs onto commercially manufactured silicon and lithium niobate on insulator integrated photonic circuits. Focused ion beam metal deposition then wires the detectors to the circuits, thereby allowing us to monitor photon counts with >7% detection efficiencies. Our method eliminates detector integration bottlenecks and provides new venues for versatile, accessible, and scalable quantum information processors.

Original languageEnglish
Pages (from-to)2325-2330
Number of pages6
JournalACS Photonics
Volume12
Issue number5
DOIs
StatePublished - May 21 2025

Keywords

  • optical quantum technologies
  • photonic integrated circuits
  • quantum photonics
  • single-photon detectors
  • superconducting nanowire single-photon detectors

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