Quantum size effects in ultra-thin YBa2Cu3O7-x films

Author:

Lyatti Matvey1,Gundareva Irina2,Röper Torsten3ORCID,Popovic Zorica4,Grützmacher Detlev1ORCID,Schäpers Thomas1ORCID

Affiliation:

1. Forschungszentrum Jülich

2. PGI-5, Forschungszentrum Jülich

3. Forschungszentrum Jülich GmbH

4. University of Belgrade

Abstract

Abstract The d-wave symmetry of the order parameter with zero energy gap in nodal directions stands in the way of using high-temperature superconductors for quantum applications. We investigate the symmetry of the order parameter in ultra-thin YBa2Cu3O7-x (YBCO) films by measuring the electrical transport properties of nanowires and nanoconstrictions aligned at different angles relative to the main crystallographic axes. The anisotropy of the nanowire critical current in the nodal and antinodal directions reduces with the decrease in the film thickness. The Andreev reflection spectroscopy shows the presence of a thickness-dependent energy gap that doesn’t exist in bulk YBCO. We find that the thickness-dependent energy gap appears due to the quantum size effects in ultra-thin YBCO films that open the superconducting energy gap along the entire Fermi surface. The fully gapped state of the ultra-thin YBCO films makes them a very promising platform for quantum applications, including quantum computing and quantum communications.

Publisher

Research Square Platform LLC

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4. Presence of s-Wave Pairing in Josephson Junctions Made of Twisted Ultrathin Bi2Sr2CaCu2O8 + x Flakes;Zhu YY;Phys Rev X,2021

5. Experimental Observation of s-Component of Superconducting Pairing in Thin Disordered HTSC Films Based on YBCO;Antonov AV;Phys Solid State,2020

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