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March 28, 2026Macromolecules1 citationsOpen Access

Photoswitchable Cross-Linking in Polymer Gels: Effects on Surface Creasing and Network Relaxation during Swelling

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AVAlyssa VanZantenSPSurbhi Punhani-SchillingerMBM. Reed Blocksome

Key Points

  • The study aims to explore how photoresponsive cross-linking in polymer gels influences mechanical properties and surface features during swelling.
  • Designed PEG hydrogels with permanent and dynamic coumarin cross-links.
  • Utilized different UV wavelengths (365 nm and 254 nm) for cross-link modulation.
  • Employed real-time FTIR and dynamic mechanical analysis (DMA) to assess mechanical responses.
  • Conducted surface imaging to analyze crease formation during swelling.
  • Postcure 365 nm irradiation increased storage modulus by up to 69%.
  • Cleavage of coumarin cross-links via 254 nm irradiation had limited effects.
  • Dynamic cross-linking significantly influenced swelling-induced crease formation and evolution.

Abstract

Polymer gels with photoresponsive cross-links enable tunable mechanics and surface morphologies, making them promising for adaptive materials. While prior work on coumarin cross-linked gels has focused on photomediated events in dilute solution, their network-level mechanical responses remain unclear. Herein, we design PEG hydrogels with both permanent covalent and dynamic coumarin cross-links, allowing in situ modulation of cross-linking under wavelength-specific UV light. Real-time FTIR and dynamic mechanical analysis (DMA) show that postcure 365 nm irradiation drives rapid dimerization, increasing storage modulus by up to 69%, whereas cleavage of coumarin cross-links via 254 nm postcure irradiation has a more limited effect due to attenuation in bulk samples. Surface imaging reveals that dynamic cross-linking governs swelling-induced crease formation and evolution. Together, these results establish design principles for hydrogels with programmable mechanics and adaptive surface topographies, enabling light-addressable coatings, mechanically lockable soft actuators, and dynamic biomaterial interfaces.

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Cite This Study

VanZanten et al. (2026) studied this question.

synapsesocial.com/papers/69c772818bbfbc51511e3087https://doi.org/10.1021/acs.macromol.5c03103
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