High-resolution spectroscopy of proximity superconductivity in finite-size quantized surface states

Fuente: arXiv
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Main Authors: Schneider, Lucas, von Bredow, Christian, Kim, Howon, Ton, Khai That, Hänke, Torben, Wiebe, Jens, Wiesendanger, Roland
Format: Preprint
Published: 2024
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author Schneider, Lucas
von Bredow, Christian
Kim, Howon
Ton, Khai That
Hänke, Torben
Wiebe, Jens
Wiesendanger, Roland
author_facet Schneider, Lucas
von Bredow, Christian
Kim, Howon
Ton, Khai That
Hänke, Torben
Wiebe, Jens
Wiesendanger, Roland
contents Adding superconducting (SC) electron pairing via the proximity effect to pristinely non-superconducting materials can lead to a variety of interesting physical phenomena. Particular interest has recently focused on inducing SC into two-dimensional surface states (SSs), potentially also combined with non-trivial topology. We study the mechanism of proximity-induced SC into the Shockley-type SSs of the noble metals Ag(111) and Cu(111) grown on the elemental SC Nb(110) using scanning tunneling spectroscopy. The tunneling spectra exhibit an intriguing multitude of sharp states at low energies. Their appearance can be explained by Andreev bound states (ABS) formed by the weakly proximitized SSs subject to lateral finite-size confinement. We study systematically how the proximity gap in the bulk states of both Ag(111) and Cu(111) persists up to island thicknesses of several times the bulk coherence length of Nb. We find that even for thick islands, the SSs acquire a gap, with the gap size for Cu being consistently larger than for Ag. Based on this, we argue that the SC in the SS is not provided through direct overlap of the SS wavefunction with the SC host but can be understood to be mediated by step edges inducing electronic coupling to the bulk. Our work provides important input for the microscopic understanding of induced superconductivity in heterostructures and its spectral manifestation. Moreover, it lays the foundation for more complex SC heterostructures based on noble metals.
format Preprint
id arxiv_https___arxiv_org_abs_2402_08895
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle High-resolution spectroscopy of proximity superconductivity in finite-size quantized surface states
Schneider, Lucas
von Bredow, Christian
Kim, Howon
Ton, Khai That
Hänke, Torben
Wiebe, Jens
Wiesendanger, Roland
Superconductivity
Adding superconducting (SC) electron pairing via the proximity effect to pristinely non-superconducting materials can lead to a variety of interesting physical phenomena. Particular interest has recently focused on inducing SC into two-dimensional surface states (SSs), potentially also combined with non-trivial topology. We study the mechanism of proximity-induced SC into the Shockley-type SSs of the noble metals Ag(111) and Cu(111) grown on the elemental SC Nb(110) using scanning tunneling spectroscopy. The tunneling spectra exhibit an intriguing multitude of sharp states at low energies. Their appearance can be explained by Andreev bound states (ABS) formed by the weakly proximitized SSs subject to lateral finite-size confinement. We study systematically how the proximity gap in the bulk states of both Ag(111) and Cu(111) persists up to island thicknesses of several times the bulk coherence length of Nb. We find that even for thick islands, the SSs acquire a gap, with the gap size for Cu being consistently larger than for Ag. Based on this, we argue that the SC in the SS is not provided through direct overlap of the SS wavefunction with the SC host but can be understood to be mediated by step edges inducing electronic coupling to the bulk. Our work provides important input for the microscopic understanding of induced superconductivity in heterostructures and its spectral manifestation. Moreover, it lays the foundation for more complex SC heterostructures based on noble metals.
title High-resolution spectroscopy of proximity superconductivity in finite-size quantized surface states
topic Superconductivity
url https://arxiv.org/abs/2402.08895