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Temperature-Driven Reversible Rippling and Bonding of a Graphene Superlattice

Andrea Locatelli
•
Chun Wang
•
Cristina Africh
altro
Nadia Binggeli
2013
  • journal article

Periodico
ACS NANO
Abstract
In order to unravel the complex interplay between substrate interactions and film configuration, we investigate and characterize graphene on a support with non-three-fold symmetry, the square Ir(100). Below 500 °C, distinct physisorbed and chemisorbed graphene phases coexist on the surface, respectively characterized by flat and buckled morphology. They organize into alternating domains that extend on mesoscopic lengths, relieving the strain due to the different thermal expansion of film and substrate. The chemisorbed phase exhibits exceptionally large one-dimensional ripples with regular nanometer periodicity and can be reversibly transformed into physisorbed graphene in a temperature-controlled process that involves surprisingly few C–Ir bonds. The formation and rupture of these bonds, rather than ripples or strain, are found to profoundly alter the local electronic structure, changing graphene behavior from semimetal to metallic type. The exploitation of such subtle interfacial changes opens new possibilities for tuning the properties of this unique material.
DOI
10.1021/nn402178u
WOS
WOS:000323810600057
Archivio
http://hdl.handle.net/11368/2744300
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-84883258648
Diritti
metadata only access
Soggetti
  • Graphene

  • flat

  • buckled

  • rippling

  • electronic structure

  • Ir(100)

  • LEEM

  • XPEEM

  • STM

  • ab initio calculation...

Web of Science© citazioni
29
Data di acquisizione
Mar 28, 2024
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