Cargando…

Correlation of Yu–Shiba–Rusinov States and Kondo Resonances in Artificial Spin Arrays on an s-Wave Superconductor

[Image: see text] Mutually interacting magnetic atoms coupled to a superconductor have gained enormous interest due to their potential for the realization of topological superconductivity. Individual magnetic impurities produce states within the superconducting energy gap known as Yu–Shiba–Rusinov (...

Descripción completa

Detalles Bibliográficos
Autores principales: Kamlapure, Anand, Cornils, Lasse, Žitko, Rok, Valentyuk, Maria, Mozara, Roberto, Pradhan, Saurabh, Fransson, Jonas, Lichtenstein, Alexander I., Wiebe, Jens, Wiesendanger, Roland
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8392378/
https://www.ncbi.nlm.nih.gov/pubmed/34351781
http://dx.doi.org/10.1021/acs.nanolett.1c00387
_version_ 1783743488955777024
author Kamlapure, Anand
Cornils, Lasse
Žitko, Rok
Valentyuk, Maria
Mozara, Roberto
Pradhan, Saurabh
Fransson, Jonas
Lichtenstein, Alexander I.
Wiebe, Jens
Wiesendanger, Roland
author_facet Kamlapure, Anand
Cornils, Lasse
Žitko, Rok
Valentyuk, Maria
Mozara, Roberto
Pradhan, Saurabh
Fransson, Jonas
Lichtenstein, Alexander I.
Wiebe, Jens
Wiesendanger, Roland
author_sort Kamlapure, Anand
collection PubMed
description [Image: see text] Mutually interacting magnetic atoms coupled to a superconductor have gained enormous interest due to their potential for the realization of topological superconductivity. Individual magnetic impurities produce states within the superconducting energy gap known as Yu–Shiba–Rusinov (YSR) states. Here, using the tip of a scanning tunneling microscope, we artificially craft spin arrays consisting of an Fe adatom interacting with an assembly of interstitial Fe atoms (IFA) on a superconducting oxygen-reconstructed Ta(100) surface and show that the magnetic interaction between the adatom and the IFA assembly can be tuned by adjusting the number of IFAs in the assembly. The YSR state experiences a characteristic crossover in its energetic position and particle–hole spectral weight asymmetry when the Kondo resonance shows spectral depletion around the Fermi energy. By the help of slave-boson mean-field theory (SBMFT) and numerical renormalization group (NRG) calculations we associate the crossover with the transition from decoupled Kondo singlets to an antiferromagnetic ground state of the Fe adatom spin and the IFA assembly effective spin.
format Online
Article
Text
id pubmed-8392378
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-83923782021-08-31 Correlation of Yu–Shiba–Rusinov States and Kondo Resonances in Artificial Spin Arrays on an s-Wave Superconductor Kamlapure, Anand Cornils, Lasse Žitko, Rok Valentyuk, Maria Mozara, Roberto Pradhan, Saurabh Fransson, Jonas Lichtenstein, Alexander I. Wiebe, Jens Wiesendanger, Roland Nano Lett [Image: see text] Mutually interacting magnetic atoms coupled to a superconductor have gained enormous interest due to their potential for the realization of topological superconductivity. Individual magnetic impurities produce states within the superconducting energy gap known as Yu–Shiba–Rusinov (YSR) states. Here, using the tip of a scanning tunneling microscope, we artificially craft spin arrays consisting of an Fe adatom interacting with an assembly of interstitial Fe atoms (IFA) on a superconducting oxygen-reconstructed Ta(100) surface and show that the magnetic interaction between the adatom and the IFA assembly can be tuned by adjusting the number of IFAs in the assembly. The YSR state experiences a characteristic crossover in its energetic position and particle–hole spectral weight asymmetry when the Kondo resonance shows spectral depletion around the Fermi energy. By the help of slave-boson mean-field theory (SBMFT) and numerical renormalization group (NRG) calculations we associate the crossover with the transition from decoupled Kondo singlets to an antiferromagnetic ground state of the Fe adatom spin and the IFA assembly effective spin. American Chemical Society 2021-08-05 2021-08-25 /pmc/articles/PMC8392378/ /pubmed/34351781 http://dx.doi.org/10.1021/acs.nanolett.1c00387 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Kamlapure, Anand
Cornils, Lasse
Žitko, Rok
Valentyuk, Maria
Mozara, Roberto
Pradhan, Saurabh
Fransson, Jonas
Lichtenstein, Alexander I.
Wiebe, Jens
Wiesendanger, Roland
Correlation of Yu–Shiba–Rusinov States and Kondo Resonances in Artificial Spin Arrays on an s-Wave Superconductor
title Correlation of Yu–Shiba–Rusinov States and Kondo Resonances in Artificial Spin Arrays on an s-Wave Superconductor
title_full Correlation of Yu–Shiba–Rusinov States and Kondo Resonances in Artificial Spin Arrays on an s-Wave Superconductor
title_fullStr Correlation of Yu–Shiba–Rusinov States and Kondo Resonances in Artificial Spin Arrays on an s-Wave Superconductor
title_full_unstemmed Correlation of Yu–Shiba–Rusinov States and Kondo Resonances in Artificial Spin Arrays on an s-Wave Superconductor
title_short Correlation of Yu–Shiba–Rusinov States and Kondo Resonances in Artificial Spin Arrays on an s-Wave Superconductor
title_sort correlation of yu–shiba–rusinov states and kondo resonances in artificial spin arrays on an s-wave superconductor
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8392378/
https://www.ncbi.nlm.nih.gov/pubmed/34351781
http://dx.doi.org/10.1021/acs.nanolett.1c00387
work_keys_str_mv AT kamlapureanand correlationofyushibarusinovstatesandkondoresonancesinartificialspinarraysonanswavesuperconductor
AT cornilslasse correlationofyushibarusinovstatesandkondoresonancesinartificialspinarraysonanswavesuperconductor
AT zitkorok correlationofyushibarusinovstatesandkondoresonancesinartificialspinarraysonanswavesuperconductor
AT valentyukmaria correlationofyushibarusinovstatesandkondoresonancesinartificialspinarraysonanswavesuperconductor
AT mozararoberto correlationofyushibarusinovstatesandkondoresonancesinartificialspinarraysonanswavesuperconductor
AT pradhansaurabh correlationofyushibarusinovstatesandkondoresonancesinartificialspinarraysonanswavesuperconductor
AT franssonjonas correlationofyushibarusinovstatesandkondoresonancesinartificialspinarraysonanswavesuperconductor
AT lichtensteinalexanderi correlationofyushibarusinovstatesandkondoresonancesinartificialspinarraysonanswavesuperconductor
AT wiebejens correlationofyushibarusinovstatesandkondoresonancesinartificialspinarraysonanswavesuperconductor
AT wiesendangerroland correlationofyushibarusinovstatesandkondoresonancesinartificialspinarraysonanswavesuperconductor