Title:
Moiré-Induced Vibrational Coupling in Double-Walled Carbon Nanotubes
Author(s):
Gordeev, Georgy; Wasserroth, Sören; Li, Han; Flavel, Benjamin; Reich, Stephanie
Year of publication:
2022
Available Date:
2022-08-09T13:03:41Z
Abstract:
Moiré patterns are additional, long-range periodicities in twisted crystalline bilayers. They are known to fundamentally change the electronic states of the layers, but similar effects on their mechanical and vibrational properties have not been discussed so far. Here we show that the moiré potential shifts the radial breathing mode in double-walled carbon nanotubes (DWCNTs). The change in frequency is expected to be proportional to the shift in optical transition energies, which are induced by the moiré patterns. To verify our model, we performed resonance Raman scattering on purified and sorted semiconducting DWCNTs. We find that the radial breathing mode shifts up to 14 cm–1 higher in energy followed by displacement of optical transition energies of up to 200 meV to lower energies, in comparison to the single-walled tubes. We show how to identify the strong coupling condition in DWCNTs from their phonon frequencies and construct a Kataura plot to aid their future experimental assignment.
Part of Identifier:
ISSN (print): 1530-6984
e-ISSN (online): 1530-6992
Keywords:
Double-walled nanotubes
moiré patterns
electromechanical coupling
Kataura plot
strong coupling
resonance Raman
DDC-Classification:
539 Moderne Physik
Publication Type:
Wissenschaftlicher Artikel
URL of the Original Publication:
DOI of the Original Publication:
Journal Volume:
21 (2021)
Journaltitle:
Nano Letters
Publisher Place:
Washington, DC
Department/institution:
Physik
Institut für Experimentalphysik
Comments:
"This document is the Accepted Manuscript version of a Published Work that appeared in final form in Nano Lett., copyright © The Authors. Published by American Chemical Society after peer review and technical editing by the publisher. To access the final edited and published work see https://doi.org/10.1021/acs.nanolett.1c00295."