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Quantitative Eliashberg theory of the superconductivity of thin films

Academic Article
Publication Date:
2025
Citation:
Quantitative Eliashberg theory of the superconductivity of thin films / G.A. Ummarino, A. Zaccone. - In: JOURNAL OF PHYSICS. CONDENSED MATTER. - ISSN 0953-8984. - 37:6(2025 Feb 10), pp. 1-7. [10.1088/1361-648x/ad92ed]
abstract:
A quantitative theory of the superconductivity of materials confined at the nanoscale in parameter-free agreement with experimental data has been missing so far. We present a generalization, in the Eliashberg framework, of a BCS theory of superconductivity in good metals which are confined along one of the three spatial directions, such as thin films. In this formulation of the Eliashberg equations the approximation of taking the normal density of states as its value at the Fermi level has been removed. By numerically solving these new Eliashberg-type equations, we find the dependence of the superconducting critical temperatureTcon the confinement sizeL, in quantitative agreement with experimental data of Pb and Al thin films with no adjustable parameters. This quantitative agreement provides an indirect confirmation that, upon increasing the confinement, a crossover from a spherical-like Fermi surface, which contains two growing hole pockets caused by the confinement, to a strongly deformed Fermi surface, occurs. This topology of the Fermi sea is implemented in the new Eliashberg-type equations to reproduce the experimentally observed maximum in the critical superconducting temperature vs film thickness of ultra-thin Pb films.
IRIS type:
01 - Articolo su periodico
Keywords:
Eliashberg theory; electron–phonon; elemental metals; superconductivity; thin films;
List of contributors:
G.A. Ummarino, A. Zaccone
Authors of the University:
ZACCONE ALESSIO ( author )
Link to information sheet:
https://air.unimi.it/handle/2434/1121835
Full Text:
https://air.unimi.it/retrieve/handle/2434/1121835/2731152/Ummarino_2025_J._Phys.__Condens._Matter_37_065703.pdf
Project:
Solving the multi-scale problem in materials mechanics: a pathway to chemical design (Multimech)
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