Controlled Growth of Oligophenylene‐Structures on Graphene for Facile Secondary Functionalization

C Christian E. Halbig (Institute of Chemistry and Biochemistry Freie Universität Berlin Berlin Germany) F Felix Fels (Department Chemie und Pharmazie Pharmazeutische Chemie Friedrich‐Alexander‐Universität Erlangen‐Nürnberg Nikolaus‐Fiebiger‐Str. 10 91058 Erlangen Germany) S Shenquan Wei (Freie Universität Berlin Altensteinstraße 23a 14105 Berlin Germany) R Robert Schusterbauer (Freie Universität Berlin Altensteinstraße 23a 14105 Berlin Germany) I Ievgen Donskyi (Freie Universität Berlin Altensteinstraße 23a 14105 Berlin Germany) M Markus R. Heinrich (Department Chemie und Pharmazie Pharmazeutische Chemie Friedrich‐Alexander‐Universität Erlangen‐Nürnberg Nikolaus‐Fiebiger‐Str. 10 91058 Erlangen Germany) S Siegfried Eigler (Institut für Chemie und Biochemie (SupraFAB), Freie Universität Berlin, Altensteinstraße 23a, 14195 Berlin, Germany)

Abstract

Abstract Functionalization of graphene derivatives is a common approach to tune material properties for use in various applications. Because of the low reactivity of the unsaturated carbon lattice of graphene, not only are few chemical approaches suitable for successful functionalization, such as those involving highly reactive in situ formed radical species or nitrene and carbene compounds, but also the degree of functionalization is usually limited, modifying only a few percent of the carbon atoms. Typically, uncontrolled side reactions such as homocoupling and oligomerization of newly introduced functional groups can occur instead of direct coupling to the carbon lattice. We want to turn this unwanted side reaction into an advantage and use intentionally formed covalent dendrimeric oligophenylene structures for secondary functionalization. We show that these oligomeric structures can be grown to specific thicknesses and used for further functionalization with bromomethyl groups at high density on the surface. This functionalization opens further avenues for subsequent nucleophilic substitution, as exemplified by the introduction of versatile azide, nitrile, and phosphonate groups. The results presented here are not only applicable to large oligophenylene structures, but also demonstrate that, in principle, single aryl moieties on graphene of any size and density can be successfully functionalized.

Article Details

Volume / Issue Vol. 64, Issue 25
Published June 17, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

C

Christian E. Halbig

Institute of Chemistry and Biochemistry Freie Universität Berlin Berlin Germany

F

Felix Fels

Department Chemie und Pharmazie Pharmazeutische Chemie Friedrich‐Alexander‐Universität Erlangen‐Nürnberg Nikolaus‐Fiebiger‐Str. 10 91058 Erlangen Germany

S

Shenquan Wei

Freie Universität Berlin Altensteinstraße 23a 14105 Berlin Germany

R

Robert Schusterbauer

Freie Universität Berlin Altensteinstraße 23a 14105 Berlin Germany

I

Ievgen Donskyi

Freie Universität Berlin Altensteinstraße 23a 14105 Berlin Germany

M

Markus R. Heinrich

Department Chemie und Pharmazie Pharmazeutische Chemie Friedrich‐Alexander‐Universität Erlangen‐Nürnberg Nikolaus‐Fiebiger‐Str. 10 91058 Erlangen Germany

S

Siegfried Eigler

Institut für Chemie und Biochemie (SupraFAB), Freie Universität Berlin, Altensteinstraße 23a, 14195 Berlin, Germany