We report on the characterization of NbTi films at ∼ 11 GHz and in DC magnetic fields up to 4 T, performed by means of the coplanar waveguide resonator technique, providing quantitative information about the penetration depth, the complex impedance, and the vortex-motion-induced complex resistivity. This kind of characterization is essential for the development of radiofrequency cavity technology. To access the vortex-pinning parameters, the complex impedance was analyzed within the formalism of the Campbell penetration depth. Measurements in this frequency range allowed us to determine the complete set of vortex-pinning parameters and the flux flow resistivity, both analyzed and discussed in the framework of high-frequency vortex dynamics models. The analysis also benefits from the comparison with results obtained by a dielectric-loaded resonator technique on similar samples and by other ancillary structural and electromagnetic characterization techniques that provide us with a comprehensive picture of the material. It turns out that the normalized flux flow resistivity follows remarkably well the trend predicted by the time dependent Ginzburg-Landau theory, while the pinning constant exhibits a decreasing trend with the field which points to a collective pinning regime.
Vortex dynamics in NbTi films at high frequency and high DC magnetic fields / Ghigo, G.; Torsello, D.; Gozzelino, L.; Fracasso, M.; Bartoli, M.; Pira, C.; Ford, D.; Marconato, G.; Fretto, M.; De Carlo, I.; Pompeo, N.; Silva, E.. - In: SCIENTIFIC REPORTS. - ISSN 2045-2322. - 13:1(2023), pp. 1-12. [10.1038/s41598-023-36473-x]
Vortex dynamics in NbTi films at high frequency and high DC magnetic fields
Ghigo G.;Torsello D.;Gozzelino L.;Fracasso M.;Bartoli M.;De Carlo I.;
2023
Abstract
We report on the characterization of NbTi films at ∼ 11 GHz and in DC magnetic fields up to 4 T, performed by means of the coplanar waveguide resonator technique, providing quantitative information about the penetration depth, the complex impedance, and the vortex-motion-induced complex resistivity. This kind of characterization is essential for the development of radiofrequency cavity technology. To access the vortex-pinning parameters, the complex impedance was analyzed within the formalism of the Campbell penetration depth. Measurements in this frequency range allowed us to determine the complete set of vortex-pinning parameters and the flux flow resistivity, both analyzed and discussed in the framework of high-frequency vortex dynamics models. The analysis also benefits from the comparison with results obtained by a dielectric-loaded resonator technique on similar samples and by other ancillary structural and electromagnetic characterization techniques that provide us with a comprehensive picture of the material. It turns out that the normalized flux flow resistivity follows remarkably well the trend predicted by the time dependent Ginzburg-Landau theory, while the pinning constant exhibits a decreasing trend with the field which points to a collective pinning regime.File | Dimensione | Formato | |
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Descrizione: Vortex dynamics in NbTi flms at high frequency and high DC magnetic felds
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https://hdl.handle.net/11583/2979442