Impedance-matched differential superconducting nanowire detectors
Abstract
Superconducting nanowire single-photon detectors (SNSPDs) are the highest performing photon-counting technology in the near-infrared (NIR). Due to delay-line effects, large area SNSPDs typically trade-off timing resolution and detection efficiency. Here, we introduce a detector design based on transmission line engineering and differential readout for device-level signal conditioning, enabling a high system detection efficiency and a low detector jitter, simultaneously. To make our differential detectors compatible with single-ended time taggers, we also engineer analog differential-to-single-ended readout electronics, with minimal impact on the system timing resolution. Our niobium nitride differential SNSPDs achieve system detection efficiency and sub- system jitter at , while at they achieve system detection efficiency and system jitter. These detectors also achieve sub-100 ps timing response at one one-hundredth maximum level, at and at , enabling time-correlated single-photon counting with high dynamic range response functions. Furthermore, thanks to the differential impedance-matched design, our detectors exhibit delay-line imaging capabilities and photon-number resolution. The properties and high-performance metrics achieved by our system make it a versatile photon-detection solution for many scientific applications.
Keywords
Cite
@article{arxiv.2108.07962,
title = {Impedance-matched differential superconducting nanowire detectors},
author = {Marco Colangelo and Boris Korzh and Jason P. Allmaras and Andrew D. Beyer and Andrew S. Mueller and Ryan M. Briggs and Bruce Bumble and Marcus Runyan and Martin J. Stevens and Adam N. McCaughan and Di Zhu and Stephen Smith and Wolfgang Becker and Lautaro Narváez and Joshua C. Bienfang and Simone Frasca and Angel E. Velasco and Cristián H. Peña and Edward E. Ramirez and Alexander B. Walter and Ekkehart Schmidt and Emma E. Wollman and Maria Spiropulu and Richard Mirin and Sae Woo Nam and Karl K. Berggren and Matthew D. Shaw},
journal= {arXiv preprint arXiv:2108.07962},
year = {2021}
}