January 2016

Journal

Quasi one-Dimensional Band Dispersion and Surface Metallization in Long Range Ordered Polymeric Wires

By:
Vasseur, Guillaume; Fagot-Revurat, Yannick; Sicot, Muriel; Kierren, Bertrand; Moreau, Luc; Malterre, Daniel; Cardenas, Luis; Galeotti, Gianluca; Lipton-Duffin, Josh; Rosei, Frederico; Giovannantonio, Marco; Giorgio, Contini; Fèvre, Patrick; Bertran, François; Liang, Liangbo ; Meunier, V.; Perepichka, D.F.
Journal Name:
Nature Communications
Page Number:
10235
Volume:
7
Issue Number:
N/A
Publication Date:
January 2016
View DOI Listing:
https://doi.org/10.1038/ncomms10235

Abstract

We study the electronic structure of an ordered array of poly(para-phenylene) chains produced by surface-catalyzed dehalogenative polymerization of 1,4-dibromobenzene on copper (110). The quantization of unoccupied molecular states is measured as a function of oligomer length by scanning tunnelling spectroscopy, with Fermi level crossings observed for chains longer than ten phenyl rings. Angle-resolved photoelectron spectroscopy reveals a quasi-one-dimensional valence band as well as a direct gap of 1.15 eV, as the conduction band is partially filled through adsorption on the surface. Tight-binding modelling and ab initio density functional theory calculations lead to a full description of the organic band-structure, including the k-dispersion, the gap size and electron charge transfer mechanisms, highlighting a strong substrate-molecule interaction that drives the system into a metallic behaviour. In summary, we have fully characterized the band structure of a carbon-based conducting wire. This model system may be considered as a fingerprint of π-conjugation of surface organic frameworks.


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