Sep 20 – 25, 2026
University of Graz
Europe/Vienna timezone

Absolute measurement of penetration depth of superconducting thin films using microwave stripline resonators

Sep 23, 2026, 5:30 PM
30m
HS 15.03 (University of Graz)

HS 15.03

University of Graz

15 - RESOWI C, ground floor and 1st floor
4) Invited talk M05 - Transport in low-dimensional strongly correlated quantum systems Mini-Colloquium

Speaker

Pratap Raychaudhuri (Tata Institute of Fundamental Research, Mumbai)

Description

Superconducting microstrip resonators, which leverage kinetic inductance to probe electrodynamics, are sensitive tools for studying superconducting thin films at microwave frequencies. However, extracting the absolute superconducting penetration depth from these measurements remains challenging. In this talk, I will present a hybrid method to determine the absolute value of over a wide temperature range by combining resonator measurements with finite-element electromagnetic simulations in COMSOL Multiphysics. We demonstrate this approach by extracting the penetration depth of NbN films by fabricating resonators from films of various thicknesses. Furthermore, we extend the technique to materials with lower critical temperatures by employing a flip-film geometry. By placing a sample above a NbN resonator, separated by a thin Mylar dielectric, we create a coupled structure where changes in the sample's penetration depth shift the resonant frequency. This non-destructive method provides a reliable, high-sensitivity platform for characterizing the penetration depth of diverse superconducting thin films. Finally, I will show the application of this technique on NiBi3, an anisotropic s-wave superconductor in the very strong coupling limit.

Authors

Mr Ajit Salunke (Tata Institute of Fundamental Research) Mr Arghya Dutta (Tata Institute of Fundamental Research) Pratap Raychaudhuri (Tata Institute of Fundamental Research, Mumbai) Ms Sulagna Dutta (Tata Institute of Fundamental Research)

Presentation materials

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