The intercalation of graphene on silicon carbide (SiC) does not only offer the possibility to study unique two-dimensional polar metals such as Ga, it also provides a route to tune the properties of graphene-based systems and develop novel materials with tailored functionalities. Herein, we present a study of how the intercalation affects the surface structure and dynamics of bilayer graphene (BLG) on SiC, by comparing epitaxial BLG grown from a silicon carbide substrate, with a 2D gallium intercalated sample, and a hydrogen intercalated sample. Using Helium Atom Scattering (HAS), we probe surface characteristics such as the in-plane thermal expansion, the surface electronic corrugation, and the atom-surface interaction potential. Moreover, the electron–phonon (e-ph) coupling strength is determined from the thermal attenuation of specular helium scattering. Due to HAS probing exclusively the top-most graphene layer, we establish an unusually large negative thermal expansion, while the e-ph coupling is slightly larger than the values found for metal-supported single layer graphene. Despite the surface sensitivity of HAS we are also able to detect subtle differences likely to be related to the varying characteristics of the intercalated materials beneath.

Hourigan, N., Seiler, P., Wetherington, M., Dong, C., Robinson, J., Benedek, G., et al. (2025). How does intercalation affect the structure and dynamics of bilayer graphene?. CARBON, 238(5 May 2025), 1-9 [10.1016/j.carbon.2025.120156].

How does intercalation affect the structure and dynamics of bilayer graphene?

Benedek G.;
2025

Abstract

The intercalation of graphene on silicon carbide (SiC) does not only offer the possibility to study unique two-dimensional polar metals such as Ga, it also provides a route to tune the properties of graphene-based systems and develop novel materials with tailored functionalities. Herein, we present a study of how the intercalation affects the surface structure and dynamics of bilayer graphene (BLG) on SiC, by comparing epitaxial BLG grown from a silicon carbide substrate, with a 2D gallium intercalated sample, and a hydrogen intercalated sample. Using Helium Atom Scattering (HAS), we probe surface characteristics such as the in-plane thermal expansion, the surface electronic corrugation, and the atom-surface interaction potential. Moreover, the electron–phonon (e-ph) coupling strength is determined from the thermal attenuation of specular helium scattering. Due to HAS probing exclusively the top-most graphene layer, we establish an unusually large negative thermal expansion, while the e-ph coupling is slightly larger than the values found for metal-supported single layer graphene. Despite the surface sensitivity of HAS we are also able to detect subtle differences likely to be related to the varying characteristics of the intercalated materials beneath.
Articolo in rivista - Articolo scientifico
Bilayer graphene; Debye-Waller; Electron-Phonon Coupling; Helium atom scattering; Thermal Expansion;
English
5-mar-2025
2025
238
5 May 2025
1
9
120156
open
Hourigan, N., Seiler, P., Wetherington, M., Dong, C., Robinson, J., Benedek, G., et al. (2025). How does intercalation affect the structure and dynamics of bilayer graphene?. CARBON, 238(5 May 2025), 1-9 [10.1016/j.carbon.2025.120156].
File in questo prodotto:
File Dimensione Formato  
Hourigan et al-2025-Carbon-VoR.pdf

accesso aperto

Tipologia di allegato: Publisher’s Version (Version of Record, VoR)
Licenza: Creative Commons
Dimensione 2.37 MB
Formato Adobe PDF
2.37 MB Adobe PDF Visualizza/Apri

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/622241
Citazioni
  • Scopus 6
  • ???jsp.display-item.citation.isi??? 6
Social impact