Synthesis, Structure and (Photo)Catalytic Behavior of Ce‐MOFs Containing Perfluoroalkylcarboxylate Linkers: Experimental and Theoretical Insights

Author:

Morelli Venturi Diletta12,Sole Notari Maria3,Trovarelli Letizia3,Mosconi Edoardo45,Alothman Asma A.5,Molokova Anastasia6,Ruser Niklas1,Meier Christoph1,Achenbach Bastian1,Lomachenko Kirill A.6ORCID,del Giacco Tiziana3,Costantino Ferdinando3,Stock Norbert12ORCID

Affiliation:

1. Institute of Inorganic Chemistry Christian-Albrecht University of Kiel Max-Eyth-Straße 2 24118 Kiel Germany

2. Kiel Nano, Surface and Interface Science KiNSIS Christian-Albrecht University of Kiel Christian-Albrechts-Platz 4 24118 Kiel Germany

3. Department of chemistry, biology and Biotechnology University of Perugia Via Elce di Sotto 8 06123 Perugia Italy

4. Computational Laboratory for Hybrid/Organic Photovoltaics (CLHYO) Istituto CNR di Scienze e Tecnologie Chimiche “Giulio Natta” (CNR-SCITEC) Via Elce di Sotto 8 06123 Perugia Italy

5. Chemistry Department College of Science King Saud University 11451 Riyadh Kingdom of Saudi Arabia

6. European Synchrotron Radiation Facility Avenue des Martyrs 71 38043 Grenoble Cedex 9 France

Abstract

AbstractCerium‐based Metal‐Organic frameworks (Ce‐MOFs) are attracting increasing interest due to their similar structural features to zirconium MOFs. The redox behavior of Ce(III/IV) adds a range of properties to the compounds. Recently, perfluorinated linkers have been used in the synthesis of MOFs to introduce new characteristic into the structure. We report the synthesis and structural characterization of Ce(IV)‐based MOFs constructed using two perfluorinated alkyl linkers. Their structure, based on hexanuclear Ce6O4(OH)412+ clusters linked to each other by the dicarboxylate ions, has been solved ab‐initio from X‐ray powder diffraction data and refined by the Rietveld method. The crystallization kinetics and the MOF formation mechanism was also invesitigated by Synchrotron radiation with XAS spectroscopies (EXAFS and XANES). The MOFs present the same fcu cubic topology as observed in MOF‐801 and UiO‐66, and they showed good stability in water at different pH conditions. The electronic structure of these MOFs has been studied by DFT calculations in order to obtain insights into the density of states structure of the reported compounds, resulting in band gaps in the range of 2.8–3.1 eV. Their catalytic properties were tested both thermally and under visible light irradiation for the degradation of methyl orange (MO) dye.

Funder

Deutsche Forschungsgemeinschaft

Ministero dell'Università e della Ricerca

European Synchrotron Radiation Facility

King Saud University

Publisher

Wiley

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