Site‐Selective Enhancement of Superconducting Nanowire Single‐Photon Detectors via Local Helium Ion Irradiation

Author:

Strohauer Stefan12ORCID,Wietschorke Fabian13ORCID,Zugliani Lucio13,Flaschmann Rasmus13ORCID,Schmid Christian13,Grotowski Stefanie12,Müller Manuel24,Jonas Björn13ORCID,Althammer Matthias24ORCID,Gross Rudolf245ORCID,Müller Kai135,Finley Jonathan J.125

Affiliation:

1. Walter Schottky Institute Technical University of Munich 85748 Garching Germany

2. TUM School of Natural Sciences Technical University of Munich 85748 Garching Germany

3. TUM School of Computation, Information and Technology Technical University of Munich 80333 Munich Germany

4. Walther‐Meißner‐Institut 85748 Garching Germany

5. Munich Center for Quantum Science and Technology (MCQST) 80799 Munich Germany

Abstract

AbstractAchieving homogeneous performance metrics between nominally identical pixels is challenging for the operation of arrays of superconducting nanowire single‐photon detectors (SNSPDs). Here, local helium ion irradiation is utilized to post‐process and tune single‐photon detection efficiency, switching current, and critical temperature of individual devices on the same chip. For 12 nm thick highly absorptive SNSPDs, which are barely sensitive to single photons with a wavelength of 780 nm prior to He ion irradiation, an increase of the system detection efficiency from <0.05% to (55.3 1.1)% is observed following irradiation. Moreover, the internal detection efficiency saturates at a temperature of 4.5 K after irradiation with 1800 ions nm−2. Compared to 8 nm SNSPDs of similar detection efficiency, a doubling of the switching current (to 20 µA) is observed for irradiated 10 nm thick detectors, increasing the amplitude of detection voltage pulses. Investigations of the scaling of superconducting thin film properties with irradiation up to a fluence of 2600 ions nm−2 revealed an increase of sheet resistance and a decrease of critical temperature towards high fluences. A physical model accounting for defect generation and sputtering during helium ion irradiation is presented and shows good qualitative agreement with experiments.

Funder

Bundesministerium für Bildung und Forschung

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Electrical and Electronic Engineering,Computational Theory and Mathematics,Condensed Matter Physics,Mathematical Physics,Nuclear and High Energy Physics,Electronic, Optical and Magnetic Materials,Statistical and Nonlinear Physics

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