optical physics

Enhanced Mid-Infrared Single-Photon Detection with Antenna-Coupled Superconducting Nanowires

arXiv:2604.18155 · doi:10.1021/acs.nanolett.6c01917

summary

The authors present an antenna‑coupled superconducting nanowire single‑photon detector that uses a crossed bowtie antenna to increase the effective detection area for mid‑infrared photons without lengthening the nanowire, while preserving internal detection efficiency and low dark‑count rates.

Abstract

Scaling the photon-detection area of superconducting nanowire single-photon detectors (SNSPDs) has traditionally been achieved by nanowire meandering. However, material inhomogeneities and fabrication-induced defects, such as line-edge roughness, increase with nanowire length, leading to reduced internal photon-detection efficiency and elevated dark-count rates. This trade-off becomes increasingly pronounced as nanowires are scaled to sub-100 nm widths and sub-5 nm thicknesses required for mid- to far-infrared sensitivity. Here, we demonstrate an antenna-coupled SNSPD architecture that enhances the effective photon-detection area without increasing nanowire length. A crossed bowtie antenna integrated with an 80 nm-wide, 3 nm-thick WSi nanowire yields 15.7 increase in effective detection area at 7.4 m compared to a bare nanowire of identical geometric footprint, while maintaining the same internal detection efficiency and dark-count rate. Antenna coupling provides a scalable approach to increasing photon-detection area while reducing the noise-equivalent power, offering performance benefits for applications in astronomy, biological imaging, and molecular spectroscopy.

39 pages, 10 figures

Topics & keywords

Enhanced Mid-Infrared Single-Photon Detection with Antenna-Coupled Superconducting Nanowires · wovepaper