Photoacid‐Induced Supramolecular Network Disassembly: A Systems Approach to Stimuli‐Responsive Polymers

M Marta Oggioni (Adolphe Merkle Institute (AMI) University of Fribourg Chemin des Verdiers 4 Fribourg 1700 Switzerland) L Luca Bertossi (Adolphe Merkle Institute (AMI) University of Fribourg Chemin des Verdiers 4 Fribourg 1700 Switzerland) D Derek J. Kiebala (Adolphe Merkle Institute (AMI) University of Fribourg Chemin des Verdiers 4 Fribourg 1700 Switzerland) A Adelle Kirshner (Adolphe Merkle Institute (AMI) University of Fribourg Chemin des Verdiers 4 Fribourg 1700 Switzerland) A Andrea Dodero (Adolphe Merkle Institute (AMI) University of Fribourg Chemin des Verdiers 4 Fribourg 1700 Switzerland) G Georges J. M. Formon (Adolphe Merkle Institute (AMI) University of Fribourg Chemin des Verdiers 4 Fribourg 1700 Switzerland) C Christoph Weder (Adolphe Merkle Institute University of Fribourg Fribourg Switzerland)

Abstract

Abstract The introduction of supramolecular (SM) motifs allows the design of stimuli‐responsive polymers whose physical properties can be changed by external triggers that affect the SM binding. However, using this approach to create light‐responsive materials that can be switched under isothermal conditions proves to be challenging. Here, we report a material systems approach to achieve this. Thus, SM polymer networks, in which optically inert ureidopyrimidinone (UPy) groups assemble into reversible cross‐links, are combined with a trigger molecule, the photoacid generator (PAG) 2‐(4‐methoxy‐styryl)‐4,6‐bis(trichloromethyl)‐1,3,5‐triazine (MBTT). Model experiments with a fluorescent, self‐reporting UPy motif elucidate the sequence of processes that result from optical triggering, namely acid generation, protonation of UPy groups, and ultimately dissociation of the SM cross‐links. The optically stimulated transformation of gels and rubbery films into viscous liquids was quantitatively monitored by opto‐rheological measurements, showing that the optical stimulation and resultant mechanical responses are intimately coupled. The potential usefulness of this approach to create materials with spatially graded mechanical characteristics and as the basis for debonding‐on‐demand (DOD) adhesives was explored in proof‐of‐concept experiments.

Article Details

Volume / Issue Vol. 64, Issue 30
Published July 21, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

M

Marta Oggioni

Adolphe Merkle Institute (AMI) University of Fribourg Chemin des Verdiers 4 Fribourg 1700 Switzerland

L

Luca Bertossi

Adolphe Merkle Institute (AMI) University of Fribourg Chemin des Verdiers 4 Fribourg 1700 Switzerland

D

Derek J. Kiebala

Adolphe Merkle Institute (AMI) University of Fribourg Chemin des Verdiers 4 Fribourg 1700 Switzerland

A

Adelle Kirshner

Adolphe Merkle Institute (AMI) University of Fribourg Chemin des Verdiers 4 Fribourg 1700 Switzerland

A

Andrea Dodero

Adolphe Merkle Institute (AMI) University of Fribourg Chemin des Verdiers 4 Fribourg 1700 Switzerland

G

Georges J. M. Formon

Adolphe Merkle Institute (AMI) University of Fribourg Chemin des Verdiers 4 Fribourg 1700 Switzerland

C

Christoph Weder

Adolphe Merkle Institute University of Fribourg Fribourg Switzerland