Emergence of moiré superlattice potential in graphene by twisted-hBN layers

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Zhang, Tianyu, Xiao, Chengxin, Xue, Hongxia, Yao, Wang, Ki, Dong-Keun
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866913577575645184
author Zhang, Tianyu
Xiao, Chengxin
Xue, Hongxia
Yao, Wang
Ki, Dong-Keun
author_facet Zhang, Tianyu
Xiao, Chengxin
Xue, Hongxia
Yao, Wang
Ki, Dong-Keun
contents Moiré superlattices formed in stacks of two or more 2D crystals with similar lattice structures have recently become excellent platforms to reveal new physics in low-dimensional systems. They are, however, highly sensitive to the angle and lattice constant differences between the associated crystals, limiting the range of the material choice and the possible moiré patterns for a given 2D crystal. Here, we present a novel approach to realize an atomically flat substrate with a periodic moiré pattern that can induce the moiré potential on the material on top by van der Waals (vdW) interactions, without suffering from the lattice and angle mismatch. By constructing a twisted hBN (thBN) moiré substrate at an angle of about 1$^\circ$, we show that the graphene on top, aligned around 15$^\circ$ with the neighboring hBN layers, exhibits typical transport properties under a hexagonal moiré potential, including multiple satellite Dirac points (DPs), Hofstadter butterfly effect, and Brown-Zak oscillations. All features point to the existence of the moiré potential in graphene formed by thBN with $\sim$1$^\circ$ twist angle. Further statistical study shows that the twist from a parallel interface between the hBN layers is critical to induce the moiré potential. Our study demonstrates that the thBN moiré substrate can be used to investigate moiré physics in arbitrary materials without being constrained by their lattice constants.
format Preprint
id arxiv_https___arxiv_org_abs_2405_10079
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Emergence of moiré superlattice potential in graphene by twisted-hBN layers
Zhang, Tianyu
Xiao, Chengxin
Xue, Hongxia
Yao, Wang
Ki, Dong-Keun
Mesoscale and Nanoscale Physics
Quantum Physics
Moiré superlattices formed in stacks of two or more 2D crystals with similar lattice structures have recently become excellent platforms to reveal new physics in low-dimensional systems. They are, however, highly sensitive to the angle and lattice constant differences between the associated crystals, limiting the range of the material choice and the possible moiré patterns for a given 2D crystal. Here, we present a novel approach to realize an atomically flat substrate with a periodic moiré pattern that can induce the moiré potential on the material on top by van der Waals (vdW) interactions, without suffering from the lattice and angle mismatch. By constructing a twisted hBN (thBN) moiré substrate at an angle of about 1$^\circ$, we show that the graphene on top, aligned around 15$^\circ$ with the neighboring hBN layers, exhibits typical transport properties under a hexagonal moiré potential, including multiple satellite Dirac points (DPs), Hofstadter butterfly effect, and Brown-Zak oscillations. All features point to the existence of the moiré potential in graphene formed by thBN with $\sim$1$^\circ$ twist angle. Further statistical study shows that the twist from a parallel interface between the hBN layers is critical to induce the moiré potential. Our study demonstrates that the thBN moiré substrate can be used to investigate moiré physics in arbitrary materials without being constrained by their lattice constants.
title Emergence of moiré superlattice potential in graphene by twisted-hBN layers
topic Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2405.10079