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Nanometric Moiré Stripes on the Surface of Bi(2)Se(3) Topological Insulator

[Image: see text] Mismatch between adjacent atomic layers in low-dimensional materials, generating moiré patterns, has recently emerged as a suitable method to tune electronic properties by inducing strong electron correlations and generating novel phenomena. Beyond graphene, van der Waals structure...

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Autores principales: Salvato, Matteo, Crescenzi, Maurizio De, Scagliotti, Mattia, Castrucci, Paola, Boninelli, Simona, Caruso, Giuseppe Mario, Liu, Yi, Mikkelsen, Anders, Timm, Rainer, Nahas, Suhas, Black-Schaffer, Annica, Kunakova, Gunta, Andzane, Jana, Erts, Donats, Bauch, Thilo, Lombardi, Floriana
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9527797/
https://www.ncbi.nlm.nih.gov/pubmed/36098662
http://dx.doi.org/10.1021/acsnano.2c02515
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author Salvato, Matteo
Crescenzi, Maurizio De
Scagliotti, Mattia
Castrucci, Paola
Boninelli, Simona
Caruso, Giuseppe Mario
Liu, Yi
Mikkelsen, Anders
Timm, Rainer
Nahas, Suhas
Black-Schaffer, Annica
Kunakova, Gunta
Andzane, Jana
Erts, Donats
Bauch, Thilo
Lombardi, Floriana
author_facet Salvato, Matteo
Crescenzi, Maurizio De
Scagliotti, Mattia
Castrucci, Paola
Boninelli, Simona
Caruso, Giuseppe Mario
Liu, Yi
Mikkelsen, Anders
Timm, Rainer
Nahas, Suhas
Black-Schaffer, Annica
Kunakova, Gunta
Andzane, Jana
Erts, Donats
Bauch, Thilo
Lombardi, Floriana
author_sort Salvato, Matteo
collection PubMed
description [Image: see text] Mismatch between adjacent atomic layers in low-dimensional materials, generating moiré patterns, has recently emerged as a suitable method to tune electronic properties by inducing strong electron correlations and generating novel phenomena. Beyond graphene, van der Waals structures such as three-dimensional (3D) topological insulators (TIs) appear as ideal candidates for the study of these phenomena due to the weak coupling between layers. Here we discover and investigate the origin of 1D moiré stripes on the surface of Bi(2)Se(3) TI thin films and nanobelts. Scanning tunneling microscopy and high-resolution transmission electron microscopy reveal a unidirectional strained top layer, in the range 14–25%, with respect to the relaxed bulk structure, which cannot be ascribed to the mismatch with the substrate lattice but rather to strain induced by a specific growth mechanism. The 1D stripes are characterized by a spatial modulation of the local density of states, which is strongly enhanced compared to the bulk system. Density functional theory calculations confirm the experimental findings, showing that the TI surface Dirac cone is preserved in the 1D moiré stripes, as expected from the topology, though with a heavily renormalized Fermi velocity that also changes between the top and valley of the stripes. The strongly enhanced density of surface states in the TI 1D moiré superstructure can be instrumental in promoting strong correlations in the topological surface states, which can be responsible for surface magnetism and topological superconductivity.
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spelling pubmed-95277972022-10-04 Nanometric Moiré Stripes on the Surface of Bi(2)Se(3) Topological Insulator Salvato, Matteo Crescenzi, Maurizio De Scagliotti, Mattia Castrucci, Paola Boninelli, Simona Caruso, Giuseppe Mario Liu, Yi Mikkelsen, Anders Timm, Rainer Nahas, Suhas Black-Schaffer, Annica Kunakova, Gunta Andzane, Jana Erts, Donats Bauch, Thilo Lombardi, Floriana ACS Nano [Image: see text] Mismatch between adjacent atomic layers in low-dimensional materials, generating moiré patterns, has recently emerged as a suitable method to tune electronic properties by inducing strong electron correlations and generating novel phenomena. Beyond graphene, van der Waals structures such as three-dimensional (3D) topological insulators (TIs) appear as ideal candidates for the study of these phenomena due to the weak coupling between layers. Here we discover and investigate the origin of 1D moiré stripes on the surface of Bi(2)Se(3) TI thin films and nanobelts. Scanning tunneling microscopy and high-resolution transmission electron microscopy reveal a unidirectional strained top layer, in the range 14–25%, with respect to the relaxed bulk structure, which cannot be ascribed to the mismatch with the substrate lattice but rather to strain induced by a specific growth mechanism. The 1D stripes are characterized by a spatial modulation of the local density of states, which is strongly enhanced compared to the bulk system. Density functional theory calculations confirm the experimental findings, showing that the TI surface Dirac cone is preserved in the 1D moiré stripes, as expected from the topology, though with a heavily renormalized Fermi velocity that also changes between the top and valley of the stripes. The strongly enhanced density of surface states in the TI 1D moiré superstructure can be instrumental in promoting strong correlations in the topological surface states, which can be responsible for surface magnetism and topological superconductivity. American Chemical Society 2022-09-13 2022-09-27 /pmc/articles/PMC9527797/ /pubmed/36098662 http://dx.doi.org/10.1021/acsnano.2c02515 Text en © 2022 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 Salvato, Matteo
Crescenzi, Maurizio De
Scagliotti, Mattia
Castrucci, Paola
Boninelli, Simona
Caruso, Giuseppe Mario
Liu, Yi
Mikkelsen, Anders
Timm, Rainer
Nahas, Suhas
Black-Schaffer, Annica
Kunakova, Gunta
Andzane, Jana
Erts, Donats
Bauch, Thilo
Lombardi, Floriana
Nanometric Moiré Stripes on the Surface of Bi(2)Se(3) Topological Insulator
title Nanometric Moiré Stripes on the Surface of Bi(2)Se(3) Topological Insulator
title_full Nanometric Moiré Stripes on the Surface of Bi(2)Se(3) Topological Insulator
title_fullStr Nanometric Moiré Stripes on the Surface of Bi(2)Se(3) Topological Insulator
title_full_unstemmed Nanometric Moiré Stripes on the Surface of Bi(2)Se(3) Topological Insulator
title_short Nanometric Moiré Stripes on the Surface of Bi(2)Se(3) Topological Insulator
title_sort nanometric moiré stripes on the surface of bi(2)se(3) topological insulator
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9527797/
https://www.ncbi.nlm.nih.gov/pubmed/36098662
http://dx.doi.org/10.1021/acsnano.2c02515
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