Your browser doesn't support javascript.
loading
Hierarchical On-Surface Synthesis of Graphene Nanoribbon Heterojunctions.
Bronner, Christopher; Durr, Rebecca A; Rizzo, Daniel J; Lee, Yea-Lee; Marangoni, Tomas; Kalayjian, Alin Miksi; Rodriguez, Henry; Zhao, William; Louie, Steven G; Fischer, Felix R; Crommie, Michael F.
Afiliação
  • Bronner C; Department of Physics , University of California , Berkeley , California 94720 , United States.
  • Durr RA; Department of Chemistry , University of California , Berkeley , California 94720 , United States.
  • Rizzo DJ; Department of Physics , University of California , Berkeley , California 94720 , United States.
  • Lee YL; Department of Physics , University of California , Berkeley , California 94720 , United States.
  • Marangoni T; Department of Physics , Pohang University of Science and Technology , Pohang , Kyungbuk 37673 , Korea.
  • Kalayjian AM; Department of Chemistry , University of California , Berkeley , California 94720 , United States.
  • Rodriguez H; Department of Chemistry , University of California , Berkeley , California 94720 , United States.
  • Zhao W; Department of Physics , University of California , Berkeley , California 94720 , United States.
  • Louie SG; Department of Physics , University of California , Berkeley , California 94720 , United States.
  • Fischer FR; Department of Physics , University of California , Berkeley , California 94720 , United States.
  • Crommie MF; Materials Sciences Division , Lawrence Berkeley National Laboratory , Berkeley , California 94720 , United States.
ACS Nano ; 12(3): 2193-2200, 2018 03 27.
Article em En | MEDLINE | ID: mdl-29381853
ABSTRACT
Bottom-up graphene nanoribbon (GNR) heterojunctions are nanoscale strips of graphene whose electronic structure abruptly changes across a covalently bonded interface. Their rational design offers opportunities for profound technological advancements enabled by their extraordinary structural and electronic properties. Thus far, the most critical aspect of their synthesis, the control over sequence and position of heterojunctions along the length of a ribbon, has been plagued by randomness in monomer sequences emerging from step-growth copolymerization of distinct monomers. All bottom-up GNR heterojunction structures created so far have exhibited random sequences of heterojunctions and, while useful for fundamental scientific studies, are difficult to incorporate into functional nanodevices as a result. In contrast, we describe a hierarchical fabrication strategy that allows the growth of bottom-up GNRs that preferentially exhibit a single heterojunction interface rather than a random statistical sequence of junctions along the ribbon. Such heterojunctions provide a viable platform that could be directly used in functional GNR-based device applications at the molecular scale. Our hierarchical GNR fabrication strategy is based on differences in the dissociation energies of C-Br and C-I bonds that allow control over the growth sequence of the block copolymers from which GNRs are formed and consequently yields a significantly higher proportion of single-junction GNR heterostructures. Scanning tunneling spectroscopy and density functional theory calculations confirm that hierarchically grown heterojunctions between chevron GNR (cGNR) and binaphthyl-cGNR segments exhibit straddling Type I band alignment in structures that are only one atomic layer thick and 3 nm in width.
Palavras-chave

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: ACS Nano Ano de publicação: 2018 Tipo de documento: Article País de afiliação: Estados Unidos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: ACS Nano Ano de publicação: 2018 Tipo de documento: Article País de afiliação: Estados Unidos