Formation of Gallium Monofluoride in the Coordination Sphere of Nickel

J Johannes Stephan (TUM School of Natural Sciences, Department of Chemistry, Chair of Inorganic and Metalorganic Chemistry Technical University of Munich Garching Germany) S Samia Kahlal (Univ Rennes, CNRS, ISCR-UMR 6226) J Jean‐Yves Saillard (Univ Rennes CNRS, ISCR‐UMR 6226 Rennes France) M Marvin Mühlau (TUM School of Natural Sciences, Department of Chemistry TUMint.Energy Research GmbH Technical University of Munich Garching Germany) L Lisa Gremmel (TUM School of Natural Sciences, Department of Chemistry, Chair of Inorganic and Metalorganic Chemistry Technical University of Munich Garching Germany) C Christian Gemel (TUM School of Natural Sciences, Department of Chemistry, Chair of Inorganic and Metalorganic Chemistry Technical University of Munich Garching Germany) R Roland A. Fischer (Chair of Inorganic and Metal−Organic Chemistry, Department of Chemistry, Technical University of Munich, Lichtenberstraße 4, Garching 85748, Germany)

Abstract

ABSTRACT Monovalent gallium halides are intrinsically unstable compounds at room temperature and can only be generated in the gas phase at temperatures of about 1000 °C. Although they are isoelectronic to carbon monoxide, dinitrogen, and the cyanide ion, which are pivotal ligands in coordination chemistry, monovalent gallium halides are largely unexplored as ligands with transition metals. Herein, we report the isolation of a dicationic nickel complex bearing a gallium monofluoride ligand. The +I oxidation state of the gallium centre is supported by NMR‐spectroscopic methods, X‐ray photoelectron spectroscopy, as well as density functional theory calculations. Analysis of the bonding situation between the GaF ligand and the central nickel atom suggests strong σ‐donating, but negligible π‐accepting properties for the supported GaF fragment. The GaF moiety forms as a product of C(sp 3 )–F bond activation of the weakly coordinating BAr F24 (tetrakis[(bis‐3,5‐trifluoromethyl)phenyl]borate) anion and serves as a fluorine source for silicon and carbon electrophiles. This leads to facile defluorination, forming the fluoride‐free complex and fluorinated products such as fluorotrimethylsilane or benzoyl fluoride.

Article Details

Volume / Issue Vol. 1, Issue 1
Published June 18, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

J

Johannes Stephan

TUM School of Natural Sciences, Department of Chemistry, Chair of Inorganic and Metalorganic Chemistry Technical University of Munich Garching Germany

S

Samia Kahlal

Univ Rennes, CNRS, ISCR-UMR 6226

J

Jean‐Yves Saillard

Univ Rennes CNRS, ISCR‐UMR 6226 Rennes France

M

Marvin Mühlau

TUM School of Natural Sciences, Department of Chemistry TUMint.Energy Research GmbH Technical University of Munich Garching Germany

L

Lisa Gremmel

TUM School of Natural Sciences, Department of Chemistry, Chair of Inorganic and Metalorganic Chemistry Technical University of Munich Garching Germany

C

Christian Gemel

TUM School of Natural Sciences, Department of Chemistry, Chair of Inorganic and Metalorganic Chemistry Technical University of Munich Garching Germany

R

Roland A. Fischer

Chair of Inorganic and Metal−Organic Chemistry, Department of Chemistry, Technical University of Munich, Lichtenberstraße 4, Garching 85748, Germany