Proximity effects and topological superconductivity dependency on layer thickness in superconductor/ferromagnetic/semiconductor hybrid devices
POSTER
Abstract
We investigate the topological properties of hybrid devices made of a semiconductor wire partially covered by a ferromagnetic layer, which in turn is covered by a superconducting one (i.e., the wire and the superconductor layer are not directly in contact). We perform numerical calculations of the system including the three materials and the electrostatic environment, and we analyze how its properties change with the ferromagnetic layer width and the gate potentials. We show that both proximity effects into the wire, the induced superconductivity and the induced exchange field, strongly depends on the ferromagnetic layer thickness. We therefore find a suitable thickness range for which the system can support topological phases, and particularly the so-called Majorana bound states. We also perform the same analysis for a semiconducting 2DEG finding similar results, although the topological phases turn out to be more robust.
Presenters
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Samuel D. D Escribano
Universidad Autónoma de Madrid
Authors
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Samuel D. D Escribano
Universidad Autónoma de Madrid
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Ruben Seoane Souto
Lund Univ/Lund Inst of Tech, Division of Solid State Physics and NanoLund, Lund University
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Andrea Maiani
Univ of Copenhagen
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Martin Leijnse
Univ of Copenhagen, Division of Solid State Physics and NanoLund, Lund University
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Yuval Oreg
Weizmann Institute of Science
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Alfredo L Yeyati
Universidad Autónoma de Madrid, Dpt. de Física Teórica de la Materia Condensada, IFIMAC, and INC, Universidad Autónoma de Madrid, Departamento de Fısica Teorica de la Materia Condensada, Universidad Autonoma de Madrid
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Karsten Flensberg
Univ of Copenhagen
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Elsa Prada
CSIC - Madrid, ICMM - CSIC, CSIC