Volume dependence of microwave-induced excess quasiparticles in superconducting resonators

Journal Article (2025)
Author(s)

Steven A.H. De Rooij (SRON–Netherlands Institute for Space Research)

Jochem J.A. Baselmans (TU Delft - Tera-Hertz Sensing, SRON–Netherlands Institute for Space Research)

Juan Bueno (TU Delft - Electronics)

Vignesh Murugesan (SRON–Netherlands Institute for Space Research, TU Delft - Complex Fluid Processing)

David J. Thoen (TU Delft - Tera-Hertz Sensing, SRON–Netherlands Institute for Space Research)

Pieter J. De Visser (SRON–Netherlands Institute for Space Research, TU Delft - Tera-Hertz Sensing)

Research Group
Tera-Hertz Sensing
DOI related publication
https://doi.org/10.1103/6h78-ypgn
More Info
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Publication Year
2025
Language
English
Research Group
Tera-Hertz Sensing
Bibliographical Note
Green Open Access added to TU Delft Institutional Repository as part of the Taverne amendment. More information about this copyright law amendment can be found at https://www.openaccess.nl. Otherwise as indicated in the copyright section: the publisher is the copyright holder of this work and the author uses the Dutch legislation to make this work public. @en
Issue number
2
Volume number
24
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Abstract

The presence of quasiparticles typically degrades the performance of superconducting microwave circuits. The readout signal can generate nonequilibrium quasiparticles, which lead to excess microwave loss and decoherence. To understand this effect quantitatively, we measure quasiparticle fluctuations and extract the quasiparticle density across different temperatures, readout powers, and resonator volumes. We find that microwave power generates a higher quasiparticle density as the active resonator volume is reduced and show that this effect sets a sensitivity limit on kinetic inductance detectors. We compare our results with theoretical models of direct microwave photon absorption by quasiparticles and conclude that an unknown, indirect mechanism plays a dominant role in quasiparticle generation. These results provide a route to mitigate quasiparticle generation due to readout power in superconducting devices.

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