← Back to search

Impedance-Matched Differential Superconducting Nanowire Detectors

Marco Colangelo, Boris Korzh, Jason P. Allmaras, Andrew D. Beyer, Andrew S. Mueller, Ryan M. Briggs, Bruce Bumble, Marcus Runyan, Martin J. Stevens, Adam N. McCaughan, Di Zhu, Stephen Smith, Wolfgang Becker, Lautaro Narváez, Joshua C. Bienfang, Simone Frasca, Angel E. Velasco, Edward E. Ramirez, Alexander B. Walter, Ekkehart Schmidt, Emma E. Wollman, Maria Spiropulu, Richard Mirin, Sae Woo Nam, Karl K. Berggren, Matthew D. Shaw

DOI 10.1103/PhysRevApplied.19.044093 · Physical Review Applied

T1

Active bibliographic source — not scientific approval

Bibliographic access preserves source history; it does not approve extracted materials or validate reported claims. Review warnings on each occurrence separately.

Abstract

Superconducting nanowire single-photon detectors (SNSPDs) are the highest-performing photon-counting technology in the near-infrared region. Because of delay-line effects, large-area SNSPDs typically trade off timing resolution and detection efficiency. This unavoidable fundamental constraint might limit their future deployment in demanding scientific applications. 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 best niobium nitride differential SNSPD achieves a system detection efficiency of (83.3±4.3)% at 1550nm and (78±5)% at 775nm. The lowest system jitter is 13.0±0.4ps at 1550nm and 9.7±0.4ps at 775nm, limited by intrinsic contributions. These detectors also achieve sub-100-ps timing response at 1/100 of the maximum level, 30.7±0.4ps at 775 nm and 47.6±0.4ps at 1550nm, enabling time-correlated single-photon counting with high-dynamic-range response functions. Furthermore, because of 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 quantum computing, quantum communication, and many other scientific applications.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
NbN

Archive — visibility unverified

Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula.

—Pressure not reportedunknown

Similar papers