Superconducting Diode Effect in Topological Hybrid Structures

Author:

Karabassov Tairzhan1ORCID,Amirov Emir S.1,Bobkova Irina V.234ORCID,Golubov Alexander A.15ORCID,Kazakova Elena A.6ORCID,Vasenko Andrey S.17ORCID

Affiliation:

1. School of Electronic Engineering, HSE University, 101000 Moscow, Russia

2. Institute of Solid State Physics, 142432 Chernogolovka, Russia

3. Moscow Institute of Physics and Technology, 141700 Dolgoprudny, Russia

4. Faculty of Physics, HSE University, 101000 Moscow, Russia

5. Faculty of Science and Technology and MESA+ Institute for Nanotechnology, University of Twente, 7500 AE Enschede, The Netherlands

6. Department of Biochemistry, Sechenov First Moscow State Medical University, 119991 Moscow, Russia

7. I.E. Tamm Department of Theoretical Physics, P.N. Lebedev Physical Institute, Russian Academy of Sciences, 119991 Moscow, Russia

Abstract

Currently, the superconducting diode effect (SDE) is being actively discussed, due to its large application potential in superconducting electronics. In particular, superconducting hybrid structures, based on three-dimensional (3D) topological insulators, are among the best candidates, due to their having the strongest spin–orbit coupling (SOC). Most theoretical studies on the SDE focus either on a full numerical calculation, which is often rather complicated, or on the phenomenological approach. In the present paper, we compare the linearized and nonlinear microscopic approaches in the superconductor/ferromagnet/3D topological insulator (S/F/TI) hybrid structure. Employing the quasiclassical Green’s function formalism we solve the problem self-consistently. We show that the results obtained by the linearized approximation are not qualitatively different from the nonlinear solution. The main distinction in the results between the two methods was quantitative, i.e., they yielded different supercurrent amplitudes. However, when calculating the so-called diode quality factor the quantitative difference is eliminated and both approaches result in good agreement.

Funder

Russian Science Foundation Project

Foundation for the Advancement of Theoretical Physics and Mathematics “BASIS”

Mirror Laboratories Project and the Basic Research Program of the HSE University

Publisher

MDPI AG

Subject

Condensed Matter Physics,Electronic, Optical and Magnetic Materials

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