2015•Light Science & ApplicationsOpen access

Superconducting single-photon detectors integrated with diamond nanophotonic circuits

Patrik Rath, Oliver Kahl, Simone Ferrari, Fabian Sproll, Georgia Lewes‐Malandrakis, Dietmar Brink, Konstantin Sergeevich Il'in, M. Siegel, Christoph Erwin Nebel, Wolfram H. P. Pernice

Open full text 79 citations

Abstract

Photonic quantum technologies hold promise to repeat the success of integrated nanophotonic circuits in non-classical applications. Using linear optical elements, quantum optical computations can be performed with integrated optical circuits and can therefore overcome the existing limitations in terms of scalability. In addition to passive optical devices for realizing photonic quantum gates, active elements, such as single-photon sources and single-photon detectors, are essential ingredients for future optical quantum circuits. Material systems that allow for the monolithic integration of all components are particularly attractive, including III-V semiconductors, silicon and diamond. Here, we demonstrate nanophotonic integrated circuits made from high-quality polycrystalline diamond thin films in combination with on-chip single-photon detectors. By using superconducting nanowires that are coupled evanescently to traveling waves, we achieve high detection efficiencies of up to 66% as well as low dark count rates and a timing resolution of 190 ps. Our devices are fully scalable and hold promise for functional diamond photonic quantum devices. The development of on-chip quantum circuitry progresses with the integration of single-photon detectors with diamond nanophotonic waveguides. Researchers based in Germany at Karlsruhe Institute of Technology and the Fraunhofer Institute of Applied Solid State Physics have fabricated superconducting niobium nitride nanowire detectors directly on top of diamond rib waveguides. This traveling wave design means that photons propagating in the diamond waveguides are coupled evanescently to the superconducting nanowires, allowing efficent on-chip detection of single photons. The small footprints of the detectors allow hundreds of detector circuits to be realized on a single chip. Furthermore, their fast response (they have a decay time of just 5.1 nanoseconds) allows operation at count rates of up to 200 megahertz and with a timing resolution of 190 picoseconds.

Open-access reader

About this research paper

What this paper is about

Photonic quantum technologies hold promise to repeat the success of integrated nanophotonic circuits in non-classical applications. Using linear optical elements, quantum optical computations can be performed with integrated optical circuits and can therefore overcome the existing limitations in terms of scalability. In addition to passive optical devices for realizing photonic quantum gates, active elements, such as single-photon sources and single-photon detectors, are essential ingredients for future optical quantum circuits. Material systems that allow for the monolithic integration of all components are particularly attractive, including III-V semiconductors, silicon and diamond. Here, we demonstrate nanophotonic integrated circuits made from high-quality polycrystalline diamond thin films in combination with on-chip single-photon detectors. By using superconducting nanowires that are coupled evanescently to traveling waves, we achieve high detection efficiencies of up to 66% as well as low dark count rates and a timing resolution of 190 ps. Our devices are fully scalable and hold promise for functional diamond photonic quantum devices. The development of on-chip quantum circuitry progresses with the integration of single-photon detectors with diamond nanophotonic waveguides. Researchers based in Germany at Karlsruhe Institute of Technology and the Fraunhofer Institute of Applied Solid State Physics have fabricated superconducting niobium nitride nanowire detectors directly on top of diamond rib waveguides. This traveling wave design means that photons propagating in the diamond waveguides are coupled evanescently to the superconducting nanowires, allowing efficent on-chip detection of single photons. The small footprints of the detectors allow hundreds of detector circuits to be realized on a single chip. Furthermore, their fast response (they have a decay time of just 5.1 nanoseconds) allows operation at count rates of up to 200 megahertz and with a timing resolution of 190 picoseconds.

Why it matters

OpenAlex reports 79 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Photonic quantum technologies hold promise to repeat the success of integrated nanophotonic circuits in non-classical applications. Using linear optical elements, quantum optical computations can be performed with integrated optical circuits and can therefore overcome the existing limitations in terms of scalability. In addition to passive optical devices for realizing photonic quantum gates, active elements, such as single-photon sources and single-photon detectors, are essential ingredients for future optical quantum circuits. Material systems that allow for the monolithic integration of all components are particularly attractive, including III-V semiconductors, silicon and diamond. Here, we demonstrate nanophotonic integrated circuits made from high-quality polycrystalline diamond thin films in combination with on-chip single-photon detectors. By using superconducting nanowires that are coupled evanescently to traveling waves, we achieve high detection efficiencies of up to 66% as well as low dark count rates and a timing resolution of 190 ps. Our devices are fully scalable and hold promise for functional diamond photonic quantum devices. The development of on-chip quantum circuitry progresses with the integration of single-photon detectors with diamond nanophotonic waveguides. Researchers based in Germany at Karlsruhe Institute of Technology and the Fraunhofer Institute of Applied Solid State Physics have fabricated superconducting niobium nitride nanowire detectors directly on top of diamond rib waveguides. This traveling wave design means that photons propagating in the diamond waveguides are coupled evanescently to the superconducting nanowires, allowing efficent on-chip detection of single photons. The small footprints of the detectors allow hundreds of detector circuits to be realized on a single chip. Furthermore, their fast response (they have a decay time of just 5.1 nanoseconds) allows operation at count rates of up to 200 megahertz and with a timing resolution of 190 picoseconds.

Key concepts: Nanophotonics, Optoelectronics, Photonics, Detector, Diamond, Photon, Physics, Electronic circuit

Related papers

Back to paper searchBrowse research topicsOriginal source
Superconducting single-photon detectors integrated with diamond nanophotonic circuits — Research Paper | ScholarLens