Imaging topological polar structures in marginally twisted 2D semiconductors

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Vu, Thi-Hai-Yen, Bennett, Daniel, Pallewella, Gayani Nadeera, Maniatis, Johnathon, Edwards, Josh, Uddin, Md Hemayet, Xing, Kaijian, Resendiz-Vazquez, Pablo, Lee, Seng Huat, Mao, Zhiqiang, Muir, Jack B., Jia, Linnan, Davis, Jeffrey A., Watanabe, Kenji, Taniguchi, Takashi, Adam, Shaffique, Sharma, Pankaj, Fuhrer, Michael S., Edmonds, Mark T.
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866910032027713536
author Vu, Thi-Hai-Yen
Bennett, Daniel
Pallewella, Gayani Nadeera
Maniatis, Johnathon
Edwards, Josh
Uddin, Md Hemayet
Xing, Kaijian
Resendiz-Vazquez, Pablo
Lee, Seng Huat
Mao, Zhiqiang
Muir, Jack B.
Jia, Linnan
Davis, Jeffrey A.
Watanabe, Kenji
Taniguchi, Takashi
Adam, Shaffique
Sharma, Pankaj
Fuhrer, Michael S.
Edmonds, Mark T.
author_facet Vu, Thi-Hai-Yen
Bennett, Daniel
Pallewella, Gayani Nadeera
Maniatis, Johnathon
Edwards, Josh
Uddin, Md Hemayet
Xing, Kaijian
Resendiz-Vazquez, Pablo
Lee, Seng Huat
Mao, Zhiqiang
Muir, Jack B.
Jia, Linnan
Davis, Jeffrey A.
Watanabe, Kenji
Taniguchi, Takashi
Adam, Shaffique
Sharma, Pankaj
Fuhrer, Michael S.
Edmonds, Mark T.
contents Moire superlattices formed in van der Waals heterostructures due to twisting, lattice mismatch and strain present an opportunity for creating novel metamaterials with unique properties not present in the individual layers themselves. Ferroelectricity for example, arises due to broken inversion symmetry in twisted and strained bilayers of 2D semiconductors with stacking domains of alternating out-of-plane polarization. However, understanding the individual contributions of twist and strain to the formation of topological polar nanostructures remains to be established and has proven to be experimentally challenging. Inversion symmetry breaking has been predicted to give rise to an in-plane component of polarization along the domain walls, leading to the formation of a network of topologically non-trivial merons (half-skyrmions) that are Bloch-type for twisted and Neel-type for strained systems. Here we utilise angle-resolved, high-resolution vector piezoresponse force microscopy (PFM) to spatially resolve polarization components and topological polar nanostructures in marginally twisted bilayer WSe2, and provide experimental proof for the existence of topologically non-trivial meron/antimeron structures. We observe both Bloch-type and Neel-type merons, allowing us to differentiate between moire superlattices formed due to twist or heterogeneous strain. This first demonstration of non-trivial real-space topology in a twisted van der Waals heterostructure opens pathways for exploring the connection between twist and topology in engineered nano-devices.
format Preprint
id arxiv_https___arxiv_org_abs_2405_15126
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Imaging topological polar structures in marginally twisted 2D semiconductors
Vu, Thi-Hai-Yen
Bennett, Daniel
Pallewella, Gayani Nadeera
Maniatis, Johnathon
Edwards, Josh
Uddin, Md Hemayet
Xing, Kaijian
Resendiz-Vazquez, Pablo
Lee, Seng Huat
Mao, Zhiqiang
Muir, Jack B.
Jia, Linnan
Davis, Jeffrey A.
Watanabe, Kenji
Taniguchi, Takashi
Adam, Shaffique
Sharma, Pankaj
Fuhrer, Michael S.
Edmonds, Mark T.
Mesoscale and Nanoscale Physics
Materials Science
Moire superlattices formed in van der Waals heterostructures due to twisting, lattice mismatch and strain present an opportunity for creating novel metamaterials with unique properties not present in the individual layers themselves. Ferroelectricity for example, arises due to broken inversion symmetry in twisted and strained bilayers of 2D semiconductors with stacking domains of alternating out-of-plane polarization. However, understanding the individual contributions of twist and strain to the formation of topological polar nanostructures remains to be established and has proven to be experimentally challenging. Inversion symmetry breaking has been predicted to give rise to an in-plane component of polarization along the domain walls, leading to the formation of a network of topologically non-trivial merons (half-skyrmions) that are Bloch-type for twisted and Neel-type for strained systems. Here we utilise angle-resolved, high-resolution vector piezoresponse force microscopy (PFM) to spatially resolve polarization components and topological polar nanostructures in marginally twisted bilayer WSe2, and provide experimental proof for the existence of topologically non-trivial meron/antimeron structures. We observe both Bloch-type and Neel-type merons, allowing us to differentiate between moire superlattices formed due to twist or heterogeneous strain. This first demonstration of non-trivial real-space topology in a twisted van der Waals heterostructure opens pathways for exploring the connection between twist and topology in engineered nano-devices.
title Imaging topological polar structures in marginally twisted 2D semiconductors
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2405.15126