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Observation of Termination-Dependent Topological Connectivity in a Magnetic Weyl Kagome Lattice

[Image: see text] Engineering surfaces and interfaces of materials promises great potential in the field of heterostructures and quantum matter designers, with the opportunity to drive new many-body phases that are absent in the bulk compounds. Here, we focus on the magnetic Weyl kagome system Co(3)...

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Autores principales: Mazzola, Federico, Enzner, Stefan, Eck, Philipp, Bigi, Chiara, Jugovac, Matteo, Cojocariu, Iulia, Feyer, Vitaliy, Shu, Zhixue, Pierantozzi, Gian Marco, De Vita, Alessandro, Carrara, Pietro, Fujii, Jun, King, Phil D. C., Vinai, Giovanni, Orgiani, Pasquale, Cacho, Cephise, Watson, Matthew D., Rossi, Giorgio, Vobornik, Ivana, Kong, Tai, Di Sante, Domenico, Sangiovanni, Giorgio, Panaccione, Giancarlo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10510577/
https://www.ncbi.nlm.nih.gov/pubmed/37638737
http://dx.doi.org/10.1021/acs.nanolett.3c02022
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author Mazzola, Federico
Enzner, Stefan
Eck, Philipp
Bigi, Chiara
Jugovac, Matteo
Cojocariu, Iulia
Feyer, Vitaliy
Shu, Zhixue
Pierantozzi, Gian Marco
De Vita, Alessandro
Carrara, Pietro
Fujii, Jun
King, Phil D. C.
Vinai, Giovanni
Orgiani, Pasquale
Cacho, Cephise
Watson, Matthew D.
Rossi, Giorgio
Vobornik, Ivana
Kong, Tai
Di Sante, Domenico
Sangiovanni, Giorgio
Panaccione, Giancarlo
author_facet Mazzola, Federico
Enzner, Stefan
Eck, Philipp
Bigi, Chiara
Jugovac, Matteo
Cojocariu, Iulia
Feyer, Vitaliy
Shu, Zhixue
Pierantozzi, Gian Marco
De Vita, Alessandro
Carrara, Pietro
Fujii, Jun
King, Phil D. C.
Vinai, Giovanni
Orgiani, Pasquale
Cacho, Cephise
Watson, Matthew D.
Rossi, Giorgio
Vobornik, Ivana
Kong, Tai
Di Sante, Domenico
Sangiovanni, Giorgio
Panaccione, Giancarlo
author_sort Mazzola, Federico
collection PubMed
description [Image: see text] Engineering surfaces and interfaces of materials promises great potential in the field of heterostructures and quantum matter designers, with the opportunity to drive new many-body phases that are absent in the bulk compounds. Here, we focus on the magnetic Weyl kagome system Co(3)Sn(2)S(2) and show how for the terminations of different samples the Weyl points connect differently, still preserving the bulk-boundary correspondence. Scanning tunneling microscopy has suggested such a scenario indirectly, and here, we probe the Fermiology of Co(3)Sn(2)S(2) directly, by linking it to its real space surface distribution. By combining micro-ARPES and first-principles calculations, we measure the energy-momentum spectra and the Fermi surfaces of Co(3)Sn(2)S(2) for different surface terminations and show the existence of topological features depending on the top-layer electronic environment. Our work helps to define a route for controlling bulk-derived topological properties by means of surface electrostatic potentials, offering a methodology for using Weyl kagome metals in responsive magnetic spintronics.
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spelling pubmed-105105772023-09-21 Observation of Termination-Dependent Topological Connectivity in a Magnetic Weyl Kagome Lattice Mazzola, Federico Enzner, Stefan Eck, Philipp Bigi, Chiara Jugovac, Matteo Cojocariu, Iulia Feyer, Vitaliy Shu, Zhixue Pierantozzi, Gian Marco De Vita, Alessandro Carrara, Pietro Fujii, Jun King, Phil D. C. Vinai, Giovanni Orgiani, Pasquale Cacho, Cephise Watson, Matthew D. Rossi, Giorgio Vobornik, Ivana Kong, Tai Di Sante, Domenico Sangiovanni, Giorgio Panaccione, Giancarlo Nano Lett [Image: see text] Engineering surfaces and interfaces of materials promises great potential in the field of heterostructures and quantum matter designers, with the opportunity to drive new many-body phases that are absent in the bulk compounds. Here, we focus on the magnetic Weyl kagome system Co(3)Sn(2)S(2) and show how for the terminations of different samples the Weyl points connect differently, still preserving the bulk-boundary correspondence. Scanning tunneling microscopy has suggested such a scenario indirectly, and here, we probe the Fermiology of Co(3)Sn(2)S(2) directly, by linking it to its real space surface distribution. By combining micro-ARPES and first-principles calculations, we measure the energy-momentum spectra and the Fermi surfaces of Co(3)Sn(2)S(2) for different surface terminations and show the existence of topological features depending on the top-layer electronic environment. Our work helps to define a route for controlling bulk-derived topological properties by means of surface electrostatic potentials, offering a methodology for using Weyl kagome metals in responsive magnetic spintronics. American Chemical Society 2023-08-28 /pmc/articles/PMC10510577/ /pubmed/37638737 http://dx.doi.org/10.1021/acs.nanolett.3c02022 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Mazzola, Federico
Enzner, Stefan
Eck, Philipp
Bigi, Chiara
Jugovac, Matteo
Cojocariu, Iulia
Feyer, Vitaliy
Shu, Zhixue
Pierantozzi, Gian Marco
De Vita, Alessandro
Carrara, Pietro
Fujii, Jun
King, Phil D. C.
Vinai, Giovanni
Orgiani, Pasquale
Cacho, Cephise
Watson, Matthew D.
Rossi, Giorgio
Vobornik, Ivana
Kong, Tai
Di Sante, Domenico
Sangiovanni, Giorgio
Panaccione, Giancarlo
Observation of Termination-Dependent Topological Connectivity in a Magnetic Weyl Kagome Lattice
title Observation of Termination-Dependent Topological Connectivity in a Magnetic Weyl Kagome Lattice
title_full Observation of Termination-Dependent Topological Connectivity in a Magnetic Weyl Kagome Lattice
title_fullStr Observation of Termination-Dependent Topological Connectivity in a Magnetic Weyl Kagome Lattice
title_full_unstemmed Observation of Termination-Dependent Topological Connectivity in a Magnetic Weyl Kagome Lattice
title_short Observation of Termination-Dependent Topological Connectivity in a Magnetic Weyl Kagome Lattice
title_sort observation of termination-dependent topological connectivity in a magnetic weyl kagome lattice
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10510577/
https://www.ncbi.nlm.nih.gov/pubmed/37638737
http://dx.doi.org/10.1021/acs.nanolett.3c02022
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