Nernst effect and its thickness dependence in superconducting NbN films
Thomas Bouteiller, Arthur Marguerite, Ramzy Daou, Dmitry Yakovlev, St\'ephane Pons, Cheryl Feuillet-Palma, Dimitri Roditchev, Beno\^it Fauqu\'e, Kamran Behnia

TL;DR
This study investigates the Nernst effect in granular NbN superconducting films of varying thickness, revealing a complex 2+1D behavior that challenges existing theories of superconducting fluctuations.
Contribution
It provides new insights into the thickness dependence of the Nernst effect in NbN films, highlighting a 2+1D behavior with no clear transition at T_c.
Findings
Nernst conductivity decreases linearly with reduced temperature.
Amplitude of Nernst conductivity scales with film thickness.
No discontinuity in Nernst response across T_c.
Abstract
Superconducting thin films and layered crystals display a Nernst signal generated by short-lived Cooper pairs above their critical temperature. Several experimental studies have broadly verified the standard theory invoking Gaussian fluctuations of a two-dimensional superconducting order parameter. Here, we present a study of the Nernst effect in granular NbN thin films with a thickness varying from 4 to 30 nm, exceeding the short superconducting coherence length and putting the system in the three-dimensional limit. We find that the Nernst conductivity decreases linearly with reduced temperature (), but the amplitude of scales with thickness. While the temperature dependence corresponds to what is expected in a 2D picture, scaling with thickness corresponds to a 3D picture. We argue that this behavior indicates a 2+1D situation, in…
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