Optical switching of ferro-rotational charge-density wave states

Fuente: arXiv
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Main Authors: Huang, Wayne Cheng-Wei, Mu, Sai, von Witte, Gevin, Li, Yanshuo Sophie, Kurtz, Felix, Hung, Sheng-Hsiung, Jeng, Horng-Tay, Rossnagel, Kai, Horstmann, Jan Gerrit, Ropers, Claus
Format: Preprint
Published: 2024
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author Huang, Wayne Cheng-Wei
Mu, Sai
von Witte, Gevin
Li, Yanshuo Sophie
Kurtz, Felix
Hung, Sheng-Hsiung
Jeng, Horng-Tay
Rossnagel, Kai
Horstmann, Jan Gerrit
Ropers, Claus
author_facet Huang, Wayne Cheng-Wei
Mu, Sai
von Witte, Gevin
Li, Yanshuo Sophie
Kurtz, Felix
Hung, Sheng-Hsiung
Jeng, Horng-Tay
Rossnagel, Kai
Horstmann, Jan Gerrit
Ropers, Claus
contents Tailored optical excitations can steer a system along non-equilibrium pathways to metastable states with specific structural or electronic properties. The light-induced hidden state of 1T-TaS$_{2}$, with its strongly enhanced conductivity and exceptionally long lifetime, represents a unique model system for studying the ultrafast switching of correlated electronic states. We use surface-sensitive electron diffraction in combination with a femtosecond optical quench to reveal the coexistence of both charge-density-wave (CDW) 2D chiralities as a structural characteristic of the hidden state, corresponding to coexisting ferro-rotational CDW states. Density functional theory (DFT) simulations of interfaces between opposite CDW 2D chiralities predict a higher-level, fractal-type moir'{e} superstructure with a kagome band structure near the Fermi energy. More broadly, these findings suggest that heterochiral interfaces in CDW systems provide an additional structural degree of freedom, expanding the possibilities for electronic control via twist-angle engineering.
format Preprint
id arxiv_https___arxiv_org_abs_2405_20872
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Optical switching of ferro-rotational charge-density wave states
Huang, Wayne Cheng-Wei
Mu, Sai
von Witte, Gevin
Li, Yanshuo Sophie
Kurtz, Felix
Hung, Sheng-Hsiung
Jeng, Horng-Tay
Rossnagel, Kai
Horstmann, Jan Gerrit
Ropers, Claus
Mesoscale and Nanoscale Physics
Tailored optical excitations can steer a system along non-equilibrium pathways to metastable states with specific structural or electronic properties. The light-induced hidden state of 1T-TaS$_{2}$, with its strongly enhanced conductivity and exceptionally long lifetime, represents a unique model system for studying the ultrafast switching of correlated electronic states. We use surface-sensitive electron diffraction in combination with a femtosecond optical quench to reveal the coexistence of both charge-density-wave (CDW) 2D chiralities as a structural characteristic of the hidden state, corresponding to coexisting ferro-rotational CDW states. Density functional theory (DFT) simulations of interfaces between opposite CDW 2D chiralities predict a higher-level, fractal-type moir'{e} superstructure with a kagome band structure near the Fermi energy. More broadly, these findings suggest that heterochiral interfaces in CDW systems provide an additional structural degree of freedom, expanding the possibilities for electronic control via twist-angle engineering.
title Optical switching of ferro-rotational charge-density wave states
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2405.20872