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A novel artificial condensed matter lattice and a new platform for one-dimensional topological phases

Engineered lattices in condensed matter physics, such as cold-atom optical lattices or photonic crystals, can have properties that are fundamentally different from those of naturally occurring electronic crystals. We report a novel type of artificial quantum matter lattice. Our lattice is a multilay...

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Autores principales: Belopolski, Ilya, Xu, Su-Yang, Koirala, Nikesh, Liu, Chang, Bian, Guang, Strocov, Vladimir N., Chang, Guoqing, Neupane, Madhab, Alidoust, Nasser, Sanchez, Daniel, Zheng, Hao, Brahlek, Matthew, Rogalev, Victor, Kim, Timur, Plumb, Nicholas C., Chen, Chaoyu, Bertran, François, Le Fèvre, Patrick, Taleb-Ibrahimi, Amina, Asensio, Maria-Carmen, Shi, Ming, Lin, Hsin, Hoesch, Moritz, Oh, Seongshik, Hasan, M. Zahid
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for the Advancement of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5365246/
https://www.ncbi.nlm.nih.gov/pubmed/28378013
http://dx.doi.org/10.1126/sciadv.1501692
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author Belopolski, Ilya
Xu, Su-Yang
Koirala, Nikesh
Liu, Chang
Bian, Guang
Strocov, Vladimir N.
Chang, Guoqing
Neupane, Madhab
Alidoust, Nasser
Sanchez, Daniel
Zheng, Hao
Brahlek, Matthew
Rogalev, Victor
Kim, Timur
Plumb, Nicholas C.
Chen, Chaoyu
Bertran, François
Le Fèvre, Patrick
Taleb-Ibrahimi, Amina
Asensio, Maria-Carmen
Shi, Ming
Lin, Hsin
Hoesch, Moritz
Oh, Seongshik
Hasan, M. Zahid
author_facet Belopolski, Ilya
Xu, Su-Yang
Koirala, Nikesh
Liu, Chang
Bian, Guang
Strocov, Vladimir N.
Chang, Guoqing
Neupane, Madhab
Alidoust, Nasser
Sanchez, Daniel
Zheng, Hao
Brahlek, Matthew
Rogalev, Victor
Kim, Timur
Plumb, Nicholas C.
Chen, Chaoyu
Bertran, François
Le Fèvre, Patrick
Taleb-Ibrahimi, Amina
Asensio, Maria-Carmen
Shi, Ming
Lin, Hsin
Hoesch, Moritz
Oh, Seongshik
Hasan, M. Zahid
author_sort Belopolski, Ilya
collection PubMed
description Engineered lattices in condensed matter physics, such as cold-atom optical lattices or photonic crystals, can have properties that are fundamentally different from those of naturally occurring electronic crystals. We report a novel type of artificial quantum matter lattice. Our lattice is a multilayer heterostructure built from alternating thin films of topological and trivial insulators. Each interface within the heterostructure hosts a set of topologically protected interface states, and by making the layers sufficiently thin, we demonstrate for the first time a hybridization of interface states across layers. In this way, our heterostructure forms an emergent atomic chain, where the interfaces act as lattice sites and the interface states act as atomic orbitals, as seen from our measurements by angle-resolved photoemission spectroscopy. By changing the composition of the heterostructure, we can directly control hopping between lattice sites. We realize a topological and a trivial phase in our superlattice band structure. We argue that the superlattice may be characterized in a significant way by a one-dimensional topological invariant, closely related to the invariant of the Su-Schrieffer-Heeger model. Our topological insulator heterostructure demonstrates a novel experimental platform where we can engineer band structures by directly controlling how electrons hop between lattice sites.
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spelling pubmed-53652462017-04-04 A novel artificial condensed matter lattice and a new platform for one-dimensional topological phases Belopolski, Ilya Xu, Su-Yang Koirala, Nikesh Liu, Chang Bian, Guang Strocov, Vladimir N. Chang, Guoqing Neupane, Madhab Alidoust, Nasser Sanchez, Daniel Zheng, Hao Brahlek, Matthew Rogalev, Victor Kim, Timur Plumb, Nicholas C. Chen, Chaoyu Bertran, François Le Fèvre, Patrick Taleb-Ibrahimi, Amina Asensio, Maria-Carmen Shi, Ming Lin, Hsin Hoesch, Moritz Oh, Seongshik Hasan, M. Zahid Sci Adv Research Articles Engineered lattices in condensed matter physics, such as cold-atom optical lattices or photonic crystals, can have properties that are fundamentally different from those of naturally occurring electronic crystals. We report a novel type of artificial quantum matter lattice. Our lattice is a multilayer heterostructure built from alternating thin films of topological and trivial insulators. Each interface within the heterostructure hosts a set of topologically protected interface states, and by making the layers sufficiently thin, we demonstrate for the first time a hybridization of interface states across layers. In this way, our heterostructure forms an emergent atomic chain, where the interfaces act as lattice sites and the interface states act as atomic orbitals, as seen from our measurements by angle-resolved photoemission spectroscopy. By changing the composition of the heterostructure, we can directly control hopping between lattice sites. We realize a topological and a trivial phase in our superlattice band structure. We argue that the superlattice may be characterized in a significant way by a one-dimensional topological invariant, closely related to the invariant of the Su-Schrieffer-Heeger model. Our topological insulator heterostructure demonstrates a novel experimental platform where we can engineer band structures by directly controlling how electrons hop between lattice sites. American Association for the Advancement of Science 2017-03-24 /pmc/articles/PMC5365246/ /pubmed/28378013 http://dx.doi.org/10.1126/sciadv.1501692 Text en Copyright © 2017, The Authors http://creativecommons.org/licenses/by-nc/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial license (http://creativecommons.org/licenses/by-nc/4.0/) , which permits use, distribution, and reproduction in any medium, so long as the resultant use is not for commercial advantage and provided the original work is properly cited.
spellingShingle Research Articles
Belopolski, Ilya
Xu, Su-Yang
Koirala, Nikesh
Liu, Chang
Bian, Guang
Strocov, Vladimir N.
Chang, Guoqing
Neupane, Madhab
Alidoust, Nasser
Sanchez, Daniel
Zheng, Hao
Brahlek, Matthew
Rogalev, Victor
Kim, Timur
Plumb, Nicholas C.
Chen, Chaoyu
Bertran, François
Le Fèvre, Patrick
Taleb-Ibrahimi, Amina
Asensio, Maria-Carmen
Shi, Ming
Lin, Hsin
Hoesch, Moritz
Oh, Seongshik
Hasan, M. Zahid
A novel artificial condensed matter lattice and a new platform for one-dimensional topological phases
title A novel artificial condensed matter lattice and a new platform for one-dimensional topological phases
title_full A novel artificial condensed matter lattice and a new platform for one-dimensional topological phases
title_fullStr A novel artificial condensed matter lattice and a new platform for one-dimensional topological phases
title_full_unstemmed A novel artificial condensed matter lattice and a new platform for one-dimensional topological phases
title_short A novel artificial condensed matter lattice and a new platform for one-dimensional topological phases
title_sort novel artificial condensed matter lattice and a new platform for one-dimensional topological phases
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5365246/
https://www.ncbi.nlm.nih.gov/pubmed/28378013
http://dx.doi.org/10.1126/sciadv.1501692
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