Graphene Oxide‐BODIPY Conjugates as Highly Fluorescent Materials

Author:

Reina Giacomo12ORCID,Beneventi Giovanni Mariano3ORCID,Kaur Ramandeep3,Biagiotti Giacomo4,Cadranel Alejandro3,Ménard‐Moyon Cécilia1ORCID,Nishina Yuta5ORCID,Richichi Barbara4ORCID,Guldi Dirk M.3ORCID,Bianco Alberto1ORCID

Affiliation:

1. CNRS, Immunology, Immunopathology and Therapeutic Chemistry UPR 3572 University of Strasbourg, ISIS 67000 Strasbourg France

2. Current address: Empa Swiss Federal Laboratories for Materials Science and Technology Lerchenfeldstrasse 5 9014 St. Gallen Switzerland

3. Department of Chemistry and Pharmacy & Interdisciplinary Center for Molecular Materials (ICMM) Friedrich-Alexander-Universität Egerlandstrasse 3 91058 Erlangen Germany

4. Department of Chemistry “Ugo Schiff” University of Firenze Via della Lastruccia 13 50019 Sesto Fiorentino FI Italy

5. Research Core for Interdisciplinary Sciences and Graduate School of Natural Science and Technology Okayama University 3-1-1 Tsushima-naka, kita-ku Okayama 700-8530 Japan

Abstract

AbstractCovalent functionalization of graphene oxide (GO) with boron dipyrromethenes (BODIPYs) was achieved through a facile synthesis, affording two different GO‐BODIPY conjugates where the main difference lies in the nature of the spacer and the type of bonds between the two components. The use of a long but flexible spacer afforded strong electronic GO‐BODIPY interactions in the ground state. This drastically altered the light absorption of the BODIPY structure and impeded its selective excitation. In contrast, the utilisation of a short, but rigid spacer based on boronic esters resulted in a perpendicular geometry of the phenyl boronic acid BODIPY (PBA‐BODIPY) with respect to the GO plane, which enables only minor electronic GO‐BODIPY interactions in the ground state. In this case, selective excitation of PBA‐BODIPY was easily achieved, allowing to investigate the excited state interactions. A quantitative ultrafast energy transfer from PBA‐BODIPY to GO was observed. Furthermore, due to the reversible dynamic nature of the covalent GO‐PBA‐BODIPY linkage, some PBA‐BODIPY is free in solution and, hence, not quenched from GO. This resulted in a weak, but detectable fluorescence from the PBA‐BODIPY that will allow to exploit GO‐PBA‐BODIPY for slow release and imaging purposes.

Funder

Centre National de la Recherche Scientifique

Agence Nationale de la Recherche

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

General Chemistry,Catalysis,Organic Chemistry

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