Supramolecular Arene‐Perfluoroarene Assembly Enhances Photoiniferter Polymerization Kinetics

J Joshua D. Marquez (George & Josephine Butler Polymer Research Laboratory, Center for Macromolecular Science & Engineering, Department of Chemistry) C Cole D. Stearns (Department of Chemistry) K Kevin A. Stewart (George and Josephine Butler Polymer Research Laboratory, Department of Chemistry, Center for Macromolecular Science and Engineering) G Graham C. Gilchrist (George & Josephine Butler Polymer Research Laboratory, Center for Macromolecular Science & Engineering, Department of Chemistry) I Ion Ghiviriga (Department of Chemistry) L Laura S. Bailey (George and Josephine Butler Polymer Research Laboratory Center for Macromolecular Science and Engineering Department of Chemistry University of Florida Gainesville Florida USA) B Brent S. Sumerlin (George & Josephine Butler Polymer Research Laboratory, Center for Macromolecular Science & Engineering, Department of Chemistry) R Ronald K. Castellano (Department of Chemistry) A Austin M. Evans (Department of Chemistry, Butler Polymer Research Laboratory, Center for Macromolecular Science & Engineering)

Abstract

ABSTRACT Ultra‐high‐molecular‐weight (UHMW, >10 6  Da) polymers have unique thermomechanical properties due to their large number of physical entanglements. Producing UHMW styrenic polymers is challenging because of their prohibitively slow homopolymerization kinetics. In this report, we show that alternating photoiniferter copolymerization between methoxy‐functionalized styrenic monomers and pentafluorostyrene can circumvent this limitation under conditions where arene–perfluoroarene (AP) interactions contribute to favorable monomer association and accelerate copolymerization. Increasing methoxy substitution on the styrene arene ring leads to pronounced rate enhancements that correlate with electronic complementarity between the styrenic comonomers. Density functional theory calculations reveal increasingly favorable AP interaction energies across the series, consistent with monomer association contributing to faster propagation. The result is up to 2000% enhancement in propagation rate in copolymerizations compared to styrene homopolymerization. Despite these rate enhancements, the resulting materials retain broadly similar glass‐transition temperatures and network‐like thermomechanical behavior, with only modest softening across the series. We then leverage the approach to produce UHMW trialkoxystyrene copolymers bearing sterically encumbered pendants, which are ultrasoft (Young's modulus of 8 kPa) and highly extensible (560%). These results establish that designed supramolecular association between styrenics is a powerful tool for controlling reactivity in radical polymerization and generating otherwise difficult‐to‐obtain materials.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 13, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

J

Joshua D. Marquez

George & Josephine Butler Polymer Research Laboratory, Center for Macromolecular Science & Engineering, Department of Chemistry

C

Cole D. Stearns

Department of Chemistry

K

Kevin A. Stewart

George and Josephine Butler Polymer Research Laboratory, Department of Chemistry, Center for Macromolecular Science and Engineering

G

Graham C. Gilchrist

George & Josephine Butler Polymer Research Laboratory, Center for Macromolecular Science & Engineering, Department of Chemistry

I

Ion Ghiviriga

Department of Chemistry

L

Laura S. Bailey

George and Josephine Butler Polymer Research Laboratory Center for Macromolecular Science and Engineering Department of Chemistry University of Florida Gainesville Florida USA

B

Brent S. Sumerlin

George & Josephine Butler Polymer Research Laboratory, Center for Macromolecular Science & Engineering, Department of Chemistry

R

Ronald K. Castellano

Department of Chemistry

A

Austin M. Evans

Department of Chemistry, Butler Polymer Research Laboratory, Center for Macromolecular Science & Engineering