Graphene on Ni(111): Electronic Corrugation and Dynamics from Helium Atom Scattering
Author(s) -
Anton Tamtögl,
Emanuel Bahn,
Jianding Zhu,
Peter Fouquet,
John Ellis,
W. Allison
Publication year - 2015
Publication title -
the journal of physical chemistry c
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.401
H-Index - 289
eISSN - 1932-7455
pISSN - 1932-7447
DOI - 10.1021/acs.jpcc.5b08284
Subject(s) - graphene , materials science , helium atom , scattering , helium , substrate (aquarium) , atom (system on chip) , debye model , phonon , condensed matter physics , molecular physics , atomic physics , nanotechnology , chemistry , optics , physics , oceanography , geology , computer science , embedded system
Using helium atom scattering, we have studied the structure and dynamics of a graphene layer prepared in situ on a Ni(111) surface. Graphene/Ni(111) exhibits a helium reflectivity of ∼20% for a thermal helium atom beam and a particularly small surface electron density corrugation ((0.06 ± 0.02) Å peak to peak height). The Debye-Waller attenuation of the elastic diffraction peaks of graphene/Ni(111) and Ni(111) was measured at surface temperatures between 150 and 740 K. A surface Debye temperature of θ D = (784 ± 14) K is determined for the graphene/Ni(111) system and θ D = (388 ± 7) K for Ni(111), suggesting that the interlayer interaction between graphene and the Ni substrate is intermediary between those for strongly interacting systems like graphene/Ru(0001) and weakly interacting systems like graphene/Pt(111). In addition we present measurements of low frequency surface phonon modes on graphene/Ni(111) where the phonon modes of the Ni(111) substrate can be clearly observed. The similarity of these findings with the graphene/Ru(0001) system indicates that the bonding of graphene to a metal substrate alters the dynamic properties of the graphene surface strongly and is responsible for the high helium reflectivity of these systems.
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