Force Reveals Hidden Conformations and Dissociation Pathways in Individual π‐Interacting Dimers

C Célia Franceschini (Research Unit Molsys NanoChem University of Liège Liège Belgium) D Dorothée Brandt M Maxime Ledent (Research Unit Molsys NanoChem University of Liège Liège Belgium) T Thomas Carabin (Research Unit Molsys NanoChem University of Liège Liège Belgium) H Hanna Traeger (Adolphe Merkle Institute University of Fribourg Fribourg Switzerland) J Jess M. Clough (Adolphe Merkle Institute University of Fribourg Fribourg Switzerland) L Luca Muccioli A Anne‐Sophie Duwez (Research Unit Molsys NanoChem University of Liège Liège Belgium) C Christoph Weder (Adolphe Merkle Institute University of Fribourg Fribourg Switzerland) Y Yoann Olivier (Laboratory for Computational Modelling of Functional Materials, Namur Institute of Structured Matter, University of Namur, Rue de Bruxelles 61, 5000 Namur, Belgium) D Damien Sluysmans (Research Unit Molsys NanoChem University of Liège Liège Belgium)

Abstract

ABSTRACT Harnessing mechanical force to control molecular structure is a central strategy in the design of mechano‐responsive materials. Noncovalent interactions are particularly attractive in this context because of their reversibility and tunable mechanical stability, yet the conformational energy landscapes of such motifs often remain inaccessible to conventional ensemble techniques. Here, we use atomic force microscopy‐based force spectroscopy to probe individual π‐interactions within a perylene diimide dimer. Single‐molecule pulling experiments combined with molecular dynamics simulations reveal two distinct long‐lived conformers with parallel and anti‐parallel perylene diimide orientations that are indistinguishable by ensemble techniques. The parallel conformer exhibits greater mechanical stability and ruptures through a sequential pathway in which the dimer converts to an anti‐parallel arrangement before π–π dissociation. Passive force spectroscopy resolves both conformers in real‐time, validates the force‐induced interconversion pathway predicted by steered molecular dynamics simulations, and quantifies their mechanical resistance and lifetime under constant load. Together, these results show that combining passive force spectroscopy with molecular simulations can reveal hidden conformational states in noncovalent assemblies and map their force‐dependent energy landscape. Our findings provide molecular‐level insight into the mechanics of π–π interactions and highlight single‐molecule force spectroscopy as a powerful approach to uncover hidden structural states in supramolecular systems.

Article Details

Volume / Issue Vol. 65, Issue 32
Published August 03, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

C

Célia Franceschini

Research Unit Molsys NanoChem University of Liège Liège Belgium

D

Dorothée Brandt

M

Maxime Ledent

Research Unit Molsys NanoChem University of Liège Liège Belgium

T

Thomas Carabin

Research Unit Molsys NanoChem University of Liège Liège Belgium

H

Hanna Traeger

Adolphe Merkle Institute University of Fribourg Fribourg Switzerland

J

Jess M. Clough

Adolphe Merkle Institute University of Fribourg Fribourg Switzerland

L

Luca Muccioli

A

Anne‐Sophie Duwez

Research Unit Molsys NanoChem University of Liège Liège Belgium

C

Christoph Weder

Adolphe Merkle Institute University of Fribourg Fribourg Switzerland

Y

Yoann Olivier

Laboratory for Computational Modelling of Functional Materials, Namur Institute of Structured Matter, University of Namur, Rue de Bruxelles 61, 5000 Namur, Belgium

D

Damien Sluysmans

Research Unit Molsys NanoChem University of Liège Liège Belgium