Surface-confined polymerization via Ullmann coupling is a promising route to create one- and two-dimensional covalent ?-conjugated structures, including the bottom-up growth of graphene nanoribbons. Understanding the mechanism of the Ullmann reaction is necessary to provide a platform for rationally controlling the formation of these materials. We use fast X-ray photoelectron spectroscopy (XPS) in kinetic measurements of epitaxial surface polymerization of 1,4-dibromobenzene on Cu(110) and devise a kinetic model based on mean field rate equations, involving a transient state. This state is observed in the energy landscapes calculated by nudged elastic band (NEB) within density functional theory (DFT), which assumes as initial and final geometries of the organometallic and polymeric structures those observed by scanning tunneling microscopy (STM). The kinetic model accounts for all the salient features observed in the experimental curves extracted from the fast-XPS measurements and enables an enhanced understanding of the polymerization process, which is found to follow a nucleation-and-growth behavior preceded by the formation of a transient state. ? 2016 American Chemical Society.

Mechanistic Picture and Kinetic Analysis of Surface-Confined Ullmann Polymerization

Di Giovannantonio M;Tomellini M;Cossaro A;Verdini A;Contini;
2016

Abstract

Surface-confined polymerization via Ullmann coupling is a promising route to create one- and two-dimensional covalent ?-conjugated structures, including the bottom-up growth of graphene nanoribbons. Understanding the mechanism of the Ullmann reaction is necessary to provide a platform for rationally controlling the formation of these materials. We use fast X-ray photoelectron spectroscopy (XPS) in kinetic measurements of epitaxial surface polymerization of 1,4-dibromobenzene on Cu(110) and devise a kinetic model based on mean field rate equations, involving a transient state. This state is observed in the energy landscapes calculated by nudged elastic band (NEB) within density functional theory (DFT), which assumes as initial and final geometries of the organometallic and polymeric structures those observed by scanning tunneling microscopy (STM). The kinetic model accounts for all the salient features observed in the experimental curves extracted from the fast-XPS measurements and enables an enhanced understanding of the polymerization process, which is found to follow a nucleation-and-growth behavior preceded by the formation of a transient state. ? 2016 American Chemical Society.
2016
Istituto di Struttura della Materia - ISM - Sede Roma Tor Vergata
Istituto Officina dei Materiali - IOM -
Density functional theory
Kinetic parameters; Kinetic theory; Kinetics; Nanoribbons; Organometallics; Polymerization; Scanning tunneling microscopy
1
4-Dibromobenzene; Conjugated structures; Graphene nanoribbons; Kinetic measurement; Nucleation and growth; Polymeric structures; Polymerization process; Surface polymerization
X ray photoelectron spectroscopy
behavior; density functional theory; geometry; kinetics; landscape; polymerization; scanning tunneling microscopy; X ray photoelectron spectroscopy
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/395268
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