Revealing the Nature of Non‐Covalent Interactions in Ionic Liquids by Combined Pulse EPR and <sup>19</sup> F NMR Spectroscopy

C Ciarán J. Rogers (Department of Chemistry Imperial College London Molecular Sciences Research Hub London W12 0BZ UK) S Spyridon Koutsoukos (Department of Chemistry Imperial College London Molecular Sciences Research Hub London W12 0BZ UK) J Jana Eisermann (Department of Chemistry Imperial College London Molecular Sciences Research Hub London W12 0BZ UK) L Luke Wylie (Mulliken Center for Theoretical Chemistry University of Bonn, Institute for Physical and Theoretical Chemistry Beringstr. 4 D‐53115 Bonn Germany) G Gavin J. Smith (Department of Chemistry Imperial College London Molecular Sciences Research Hub London W12 0BZ UK) T Tom Welton (Department of Chemistry Imperial College London Molecular Sciences Research Hub London W12 0BZ UK) M Maxie M. Roessler (Department of Chemistry and Centre for Pulse EPR Spectroscopy, Imperial College London, Molecular Sciences Research Hub, 82 Wood Lane, London W12 0BZ, U.K.)

Abstract

Abstract Ionic liquids (ILs) are a unique class of compounds that have attracted interest for numerous and diverse applications, ranging from solvents for sustainable synthesis to sustainable electrolytes. Understanding their nanostructure and solute‐solvent interactions is a prerequisite to harnessing the full potential of ILs. It has been proposed that ILs solvate non‐polar solutes via their alkyl chains through the formation of nanoscale structures, such as micelles. Here, we determine the non‐covalent interactions responsible for such nanostructuring in ILs. We use pulse electron paramagnetic resonance (EPR), paramagnetic relaxation enhancement (PRE) NMR, molecular dynamics (MD), and density functional theory (DFT) calculations in combination with ILs tailored to probe specific interactions through spin and isotopic labelling. Inter‐ and intramolecular cation–anion interactions are probed by electron‐nuclear double resonance (ENDOR) and 19 F PRE experiments and show that nitroxide solutes associate with the polar domains of the imidazolium cation through weak hydrogen bonding with the imidazolium ring protons, as supported by MD simulations. Thus, this study reveals a less structured nanostructure than a micellar picture might suggest, but with clear IL cation‐solute interactions. Our methodology to reveal nanostructure not only has implications for ILs but is also applicable to other soft matter systems.

Article Details

Volume / Issue Vol. 64, Issue 28
Published July 07, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

C

Ciarán J. Rogers

Department of Chemistry Imperial College London Molecular Sciences Research Hub London W12 0BZ UK

S

Spyridon Koutsoukos

Department of Chemistry Imperial College London Molecular Sciences Research Hub London W12 0BZ UK

J

Jana Eisermann

Department of Chemistry Imperial College London Molecular Sciences Research Hub London W12 0BZ UK

L

Luke Wylie

Mulliken Center for Theoretical Chemistry University of Bonn, Institute for Physical and Theoretical Chemistry Beringstr. 4 D‐53115 Bonn Germany

G

Gavin J. Smith

Department of Chemistry Imperial College London Molecular Sciences Research Hub London W12 0BZ UK

T

Tom Welton

Department of Chemistry Imperial College London Molecular Sciences Research Hub London W12 0BZ UK

M

Maxie M. Roessler

Department of Chemistry and Centre for Pulse EPR Spectroscopy, Imperial College London, Molecular Sciences Research Hub, 82 Wood Lane, London W12 0BZ, U.K.