Imaging inter-valley coherent order in magic-angle twisted trilayer graphene

Fuente: arXiv
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Hauptverfasser: Kim, Hyunjin, Choi, Youngjoon, Lantagne-Hurtubise, Étienne, Lewandowski, Cyprian, Thomson, Alex, Kong, Lingyuan, Zhou, Haoxin, Baum, Eli, Zhang, Yiran, Holleis, Ludwig, Watanabe, Kenji, Taniguchi, Takashi, Young, Andrea F., Alicea, Jason, Nadj-Perge, Stevan
Format: Preprint
Veröffentlicht: 2023
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author Kim, Hyunjin
Choi, Youngjoon
Lantagne-Hurtubise, Étienne
Lewandowski, Cyprian
Thomson, Alex
Kong, Lingyuan
Zhou, Haoxin
Baum, Eli
Zhang, Yiran
Holleis, Ludwig
Watanabe, Kenji
Taniguchi, Takashi
Young, Andrea F.
Alicea, Jason
Nadj-Perge, Stevan
author_facet Kim, Hyunjin
Choi, Youngjoon
Lantagne-Hurtubise, Étienne
Lewandowski, Cyprian
Thomson, Alex
Kong, Lingyuan
Zhou, Haoxin
Baum, Eli
Zhang, Yiran
Holleis, Ludwig
Watanabe, Kenji
Taniguchi, Takashi
Young, Andrea F.
Alicea, Jason
Nadj-Perge, Stevan
contents Magic-angle twisted trilayer graphene (MATTG) exhibits a range of strongly correlated electronic phases that spontaneously break its underlying symmetries. The microscopic nature of these phases and their residual symmetries stands as a key outstanding puzzle whose resolution promises to shed light on the origin of superconductivity in twisted materials. Here we investigate correlated phases of MATTG using scanning tunneling microscopy and identify striking signatures of interaction-driven spatial symmetry breaking. In low-strain samples, over a filling range of about 2-3 electrons or holes per moiré unit cell, we observe atomic-scale reconstruction of the graphene lattice that accompanies a correlated gap in the tunneling spectrum. This short-scale restructuring appears as a Kekulé supercell -- implying spontaneous inter-valley coherence between electrons -- and persists in a wide range of magnetic fields and temperatures that coincide with the development of the gap. Large-scale maps covering several moiré unit cells further reveal a slow evolution of the Kekulé pattern, indicating that atomic-scale reconstruction coexists with translation symmetry breaking at the much longer moiré scale. We employ auto-correlation and Fourier analyses to extract the intrinsic periodicity of these phases and find that they are consistent with the theoretically proposed incommensurate Kekulé spiral order. Moreover, we find that the wavelength characterizing moiré-scale modulations monotonically decreases with hole doping away from half-filling of the bands and depends only weakly on the magnetic field. Our results provide essential insights into the nature of MATTG correlated phases in the presence of strain and imply that superconductivity emerges from an inter-valley coherent parent state.
format Preprint
id arxiv_https___arxiv_org_abs_2304_10586
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Imaging inter-valley coherent order in magic-angle twisted trilayer graphene
Kim, Hyunjin
Choi, Youngjoon
Lantagne-Hurtubise, Étienne
Lewandowski, Cyprian
Thomson, Alex
Kong, Lingyuan
Zhou, Haoxin
Baum, Eli
Zhang, Yiran
Holleis, Ludwig
Watanabe, Kenji
Taniguchi, Takashi
Young, Andrea F.
Alicea, Jason
Nadj-Perge, Stevan
Strongly Correlated Electrons
Magic-angle twisted trilayer graphene (MATTG) exhibits a range of strongly correlated electronic phases that spontaneously break its underlying symmetries. The microscopic nature of these phases and their residual symmetries stands as a key outstanding puzzle whose resolution promises to shed light on the origin of superconductivity in twisted materials. Here we investigate correlated phases of MATTG using scanning tunneling microscopy and identify striking signatures of interaction-driven spatial symmetry breaking. In low-strain samples, over a filling range of about 2-3 electrons or holes per moiré unit cell, we observe atomic-scale reconstruction of the graphene lattice that accompanies a correlated gap in the tunneling spectrum. This short-scale restructuring appears as a Kekulé supercell -- implying spontaneous inter-valley coherence between electrons -- and persists in a wide range of magnetic fields and temperatures that coincide with the development of the gap. Large-scale maps covering several moiré unit cells further reveal a slow evolution of the Kekulé pattern, indicating that atomic-scale reconstruction coexists with translation symmetry breaking at the much longer moiré scale. We employ auto-correlation and Fourier analyses to extract the intrinsic periodicity of these phases and find that they are consistent with the theoretically proposed incommensurate Kekulé spiral order. Moreover, we find that the wavelength characterizing moiré-scale modulations monotonically decreases with hole doping away from half-filling of the bands and depends only weakly on the magnetic field. Our results provide essential insights into the nature of MATTG correlated phases in the presence of strain and imply that superconductivity emerges from an inter-valley coherent parent state.
title Imaging inter-valley coherent order in magic-angle twisted trilayer graphene
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2304.10586