Saved in:
Bibliographic Details
Main Authors: Verhage, Michael, Lee, Martin, Flipse, Kees
Format: Preprint
Published: 2026
Subjects:
Online Access:https://arxiv.org/abs/2601.03379
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866909983173509120
author Verhage, Michael
Lee, Martin
Flipse, Kees
author_facet Verhage, Michael
Lee, Martin
Flipse, Kees
contents In 1T-TaS2, the nearly-commensurate charge density wave (NC-CDW) exhibits emergent chirality, a property of interest for technological applications such as memory. We study the relationship between chirality and topological defects using holographic analysis of scanning tunneling microscopy data. By characterizing the CDW order parameter, we uncover distinct topological defects and define a chiral order parameter that connects directly to them. Our analysis distinguishes between vortex pairs in high-strain areas and glass-like soliton or discommensurations networks. We propose that perturbations, such as strain, drive vortex nucleation and annihilation, leaving solitons or discommensurations pinned by disorder. Electric fields induce soliton and discommensurations movement, causing chiral switching via localized order parameter melting, enabling controllable room-temperature chirality
format Preprint
id arxiv_https___arxiv_org_abs_2601_03379
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle The interplay between topology, defects and chiral order in the nearly-commensurate charge density wave of 1T-TaS2
Verhage, Michael
Lee, Martin
Flipse, Kees
Materials Science
In 1T-TaS2, the nearly-commensurate charge density wave (NC-CDW) exhibits emergent chirality, a property of interest for technological applications such as memory. We study the relationship between chirality and topological defects using holographic analysis of scanning tunneling microscopy data. By characterizing the CDW order parameter, we uncover distinct topological defects and define a chiral order parameter that connects directly to them. Our analysis distinguishes between vortex pairs in high-strain areas and glass-like soliton or discommensurations networks. We propose that perturbations, such as strain, drive vortex nucleation and annihilation, leaving solitons or discommensurations pinned by disorder. Electric fields induce soliton and discommensurations movement, causing chiral switching via localized order parameter melting, enabling controllable room-temperature chirality
title The interplay between topology, defects and chiral order in the nearly-commensurate charge density wave of 1T-TaS2
topic Materials Science
url https://arxiv.org/abs/2601.03379