Are Grignard Reactions in Deep Eutectic Solvents Interface‐Driven?

I Iva Manasi (Department of Physics University of Bristol, Tyndall Avenue Bristol BS8 1TL United Kingdom) M Marco Bortoli (Department of Chemistry and Hylleraas Centre for Quantum Molecular Sciences University of Oslo PO Box 1033 Blindern 0315 Oslo Norway) D Daniel T. Bowron (ISIS Neutron and Muon Source Rutherford Appleton Laboratory Oxford OX11 0QX United Kingdom) M Mario Campana (ISIS Neutron and Muon Source Rutherford Appleton Laboratory Oxford OX11 0QX United Kingdom) O Oliver S. Hammond (European Spallation Source ERIC Data Management & Software Centre Asmussens Allé 305 Kongens Lyngby 2800 Denmark) T Thomas F. Headen J Jake Hooton (Department of Chemistry University of Bath Claverton Down Bath BA2 7AX United Kingdom) E Eva Hevia (Departement für Chemie, Biochemie und Pharmazie, Universität Bern, Freistrasse 3, Bern 3012, Switzerland) M Michele Cascella (Department of Chemistry) O Odile Eisenstein (Department of Chemistry and Hylleraas Centre for Quantum Molecular Sciences University of Oslo PO Box 1033 Blindern 0315 Oslo Norway) K Karen J. Edler (Department of Chemistry, Centre for Analysis and Synthesis (CAS), Lund University Lund 221 00 Sweden)

Abstract

Abstract Due to their high reactivity, organolithium and organomagnesium addition to ketones is usually performed under inert atmosphere at low temperature. Recent work has shown that, by dissolving the substrate in deep eutectic solvents (DES), these processes can be carried out on the benchtop, in air at room temperature. Surprisingly, the organometallic reagent, added to the DES from an organic solution, works in these conditions and gives better yields than in the standard setup. Here, we investigated acetophenone in a (1:2) choline chloride:glycerol (ChCl:Gly) DES solution by experimental liquid diffraction, neutron reflectometry, NMR, interfacial tension measurements, and by computational modelling. Our data show that this DES is a poor solvent for the ketone and promotes its accumulation at the surface of the liquid or its escape into the organic solvent. Molecular dynamics simulations of Grignard reagent i ‐PrMgCl in the (ChCl:Gly)/tetrahydrofuran biphasic system indicate also preference for its localisation at the interface. These results pinpoint why this combination of solvents promote the reaction, require stirring, and accounts for the lack of rapid decomposition of the organometallic reagents.

Article Details

Volume / Issue Vol. 64, Issue 42
Published October 13, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

I

Iva Manasi

Department of Physics University of Bristol, Tyndall Avenue Bristol BS8 1TL United Kingdom

M

Marco Bortoli

Department of Chemistry and Hylleraas Centre for Quantum Molecular Sciences University of Oslo PO Box 1033 Blindern 0315 Oslo Norway

D

Daniel T. Bowron

ISIS Neutron and Muon Source Rutherford Appleton Laboratory Oxford OX11 0QX United Kingdom

M

Mario Campana

ISIS Neutron and Muon Source Rutherford Appleton Laboratory Oxford OX11 0QX United Kingdom

O

Oliver S. Hammond

European Spallation Source ERIC Data Management & Software Centre Asmussens Allé 305 Kongens Lyngby 2800 Denmark

T

Thomas F. Headen

J

Jake Hooton

Department of Chemistry University of Bath Claverton Down Bath BA2 7AX United Kingdom

E

Eva Hevia

Departement für Chemie, Biochemie und Pharmazie, Universität Bern, Freistrasse 3, Bern 3012, Switzerland

M

Michele Cascella

Department of Chemistry

O

Odile Eisenstein

Department of Chemistry and Hylleraas Centre for Quantum Molecular Sciences University of Oslo PO Box 1033 Blindern 0315 Oslo Norway

K

Karen J. Edler

Department of Chemistry, Centre for Analysis and Synthesis (CAS), Lund University Lund 221 00 Sweden