Continuous real-time detection of quasiparticle trapping in aluminum nanobridge Josephson junctions

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Abstract

Nonequilibrium quasiparticles are ubiquitous in superconducting electronics. These quasiparticles can trap in the internal Andreev bound states of a phase-biased Josephson junction, providing a mechanism for studying their presence and behavior. We characterize a quasiparticle trapping detector device based on a two junction aluminum nanobridge superconducting quantum interference device incorporated into a transmission line resonator. When the device is flux-biased, distinct resonant frequencies develop depending on the trapped quasiparticle number. We demonstrate continuous detection of up to 3 trapped quasiparticles, with detection of a trapped quasiparticle with a signal-to-noise ratio of 27 in 5 μs. We describe initial measurements of quasiparticle behavior and discuss the possible optimization and application of such detector devices.

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Farmer, J. T., Zarassi, A., Hartsell, D. M., Vlachos, E., Zhang, H., & Levenson-Falk, E. M. (2021). Continuous real-time detection of quasiparticle trapping in aluminum nanobridge Josephson junctions. Applied Physics Letters, 119(12). https://doi.org/10.1063/5.0063445

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