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From Graphene Nanoribbons on Cu(111) to Nanographene on Cu(110): Critical Role of Substrate Structure in the Bottom-Up Fabrication Strategy.
Simonov, Konstantin A; Vinogradov, Nikolay A; Vinogradov, Alexander S; Generalov, Alexander V; Zagrebina, Elena M; Svirskiy, Gleb I; Cafolla, Attilio A; Carpy, Thomas; Cunniffe, John P; Taketsugu, Tetsuya; Lyalin, Andrey; Mårtensson, Nils; Preobrajenski, Alexei B.
Afiliação
  • Simonov KA; Department of Physics and Astronomy, Uppsala University , Box 516, 75120 Uppsala, Sweden.
  • Vinogradov NA; MAX IV Laboratory, Lund University , Box 118, 22100 Lund, Sweden.
  • Vinogradov AS; V.A. Fock Institute of Physics, St. Petersburg State University , 198504 St. Petersburg, Russia.
  • Generalov AV; Department of Physics and Astronomy, Uppsala University , Box 516, 75120 Uppsala, Sweden.
  • Zagrebina EM; MAX IV Laboratory, Lund University , Box 118, 22100 Lund, Sweden.
  • Svirskiy GI; V.A. Fock Institute of Physics, St. Petersburg State University , 198504 St. Petersburg, Russia.
  • Cafolla AA; V.A. Fock Institute of Physics, St. Petersburg State University , 198504 St. Petersburg, Russia.
  • Carpy T; MAX IV Laboratory, Lund University , Box 118, 22100 Lund, Sweden.
  • Cunniffe JP; V.A. Fock Institute of Physics, St. Petersburg State University , 198504 St. Petersburg, Russia.
  • Taketsugu T; V.A. Fock Institute of Physics, St. Petersburg State University , 198504 St. Petersburg, Russia.
  • Lyalin A; V.A. Fock Institute of Physics, St. Petersburg State University , 198504 St. Petersburg, Russia.
  • Mårtensson N; School of Physical Sciences, Dublin City University , Dublin 9, Ireland.
  • Preobrajenski AB; School of Physical Sciences, Dublin City University , Dublin 9, Ireland.
ACS Nano ; 9(9): 8997-9011, 2015 Sep 22.
Article em En | MEDLINE | ID: mdl-26301684
ABSTRACT
Bottom-up strategies can be effectively implemented for the fabrication of atomically precise graphene nanoribbons. Recently, using 10,10'-dibromo-9,9'-bianthracene (DBBA) as a molecular precursor to grow armchair nanoribbons on Au(111) and Cu(111), we have shown that substrate activity considerably affects the dynamics of ribbon formation, nonetheless without significant modifications in the growth mechanism. In this paper we compare the on-surface reaction pathways for DBBA molecules on Cu(111) and Cu(110). Evolution of both systems has been studied via a combination of core-level X-ray spectroscopies, scanning tunneling microscopy, and theoretical calculations. Experimental and theoretical results reveal a significant increase in reactivity for the open and anisotropic Cu(110) surface in comparison with the close-packed Cu(111). This increased reactivity results in a predominance of the molecular-substrate interaction over the intermolecular one, which has a critical impact on the transformations of DBBA on Cu(110). Unlike DBBA on Cu(111), the Ullmann coupling cannot be realized for DBBA/Cu(110) and the growth of nanoribbons via this mechanism is blocked. Instead, annealing of DBBA on Cu(110) at 250 °C results in the formation of a new structure quasi-zero-dimensional flat nanographenes. Each nanographene unit has dehydrogenated zigzag edges bonded to the underlying Cu rows and oriented with the hydrogen-terminated armchair edge parallel to the [1-10] direction. Strong bonding of nanographene to the substrate manifests itself in a high adsorption energy of -12.7 eV and significant charge transfer of 3.46e from the copper surface. Nanographene units coordinated with bromine adatoms are able to arrange in highly regular arrays potentially suitable for nanotemplating.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2015 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2015 Tipo de documento: Article