We present an analytically solvable theory of Bardeen-Cooper-Schrieffer-type superconductivity in good metals which are confined along one of the three spatial directions, such as thin films. Closed-form expressions for the dependence of the superconducting critical temperature T-c as a function of the confinement size L are obtained, in quantitative agreement with experimental data with no adjustable parameters. Upon increasing the confinement, a crossover from a spherical Fermi surface, which contains two growing hollow spheres corresponding to states forbidden by confinement, to a strongly deformed Fermi surface, is predicted. This crossover represents a new topological transition, driven by confinement, between two Fermi surfaces belonging to two different homotopy classes. This topological transition provides a mechanistic explanation of the commonly observed non-monotonic dependence of T-c upon film thickness with a maximum which, according to our theory, coincides with the topological transition.
Extended analytical BCS theory of superconductivity in thin films / R. Travaglino, A. Zaccone. - In: JOURNAL OF APPLIED PHYSICS. - ISSN 0021-8979. - 133:3(2023 Jan 17), pp. 033901.1-033901.12. [10.1063/5.0132820]
Extended analytical BCS theory of superconductivity in thin films
A. Zaccone
Ultimo
2023
Abstract
We present an analytically solvable theory of Bardeen-Cooper-Schrieffer-type superconductivity in good metals which are confined along one of the three spatial directions, such as thin films. Closed-form expressions for the dependence of the superconducting critical temperature T-c as a function of the confinement size L are obtained, in quantitative agreement with experimental data with no adjustable parameters. Upon increasing the confinement, a crossover from a spherical Fermi surface, which contains two growing hollow spheres corresponding to states forbidden by confinement, to a strongly deformed Fermi surface, is predicted. This crossover represents a new topological transition, driven by confinement, between two Fermi surfaces belonging to two different homotopy classes. This topological transition provides a mechanistic explanation of the commonly observed non-monotonic dependence of T-c upon film thickness with a maximum which, according to our theory, coincides with the topological transition.| File | Dimensione | Formato | |
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