Tunable and wavelength-gated reversible photopolymerization of quinolinone-based telechelic oligomers via [2π + 2π] cycloaddition

Abstract

Gated photochemistry provides a powerful strategy for modulating polymer architecture under mild conditions through light-controlled reversible bond formation. Quinolinone-based photoactive units are introduced as a robust and tunable motif for reversible [2π + 2π] photocycloaddition, enabling wavelength-gated photopolymerization and depolymerization. Telechelic macromonomers bearing quinolinone end groups undergo efficient light-triggered polymerization to yield high-molecular-weight polymers (Mp ≈ 60 000 Da), followed by nearly complete depolymerization back to the original macromonomers under distinct irradiation wavelengths—without catalysts or additives. Systematic investigation of oxygen concentration, irradiation wavelength, and monomer concentration revealed a complex interplay governing reaction efficiency and reversibility. Oxygen enables red-shifted operation (up to 45 nm) and modulates the photostationary equilibrium, while concentration determines the balance between intermolecular chain extension and intramolecular cyclization. This wavelength- and environment-tunable photochemical response achieves reversible polymer formation, including under ambient conditions. The demonstrated tunability and reversible behavior establish quinolinone-based photoswitches as a versatile platform for recyclable and reprocessable light-responsive polymer systems.

Graphical abstract: Tunable and wavelength-gated reversible photopolymerization of quinolinone-based telechelic oligomers via [2π + 2π] cycloaddition

Supplementary files

Article information

Article type
Paper
Submitted
28 Oct 2025
Accepted
05 Dec 2025
First published
16 Dec 2025

Polym. Chem., 2026, Advance Article

Tunable and wavelength-gated reversible photopolymerization of quinolinone-based telechelic oligomers via [2π + 2π] cycloaddition

L. Charton, R. Remy and C. Calvino, Polym. Chem., 2026, Advance Article , DOI: 10.1039/D5PY01021G

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