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April 13, 2026Angewandte Chemie International Edition0 citationsOpen Access

Covalent Network Formation Rate Controls Depletion‐Induced Supramolecular Assembly in Hybrid Double Network Hydrogels

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MÖMertcan ÖzelSNSebastian NovosedlikTLTingxian Liu

Key Points

  • This research aims to understand how the rate of covalent network formation affects the assembly and properties of supramolecular hydrogels.
  • Controlled the rate of covalent network formation using the inverse electron‐demand Diels–Alder reaction.
  • Investigated the effects of slow and rapid crosslinking on supramolecular filament structures.
  • Compared mechanical properties of hydrogels formed under different crosslinking rates.
  • Slow macromonomer crosslinking promotes the assembly of supramolecular filaments into bundles.
  • Rapid covalent network formation prevents dynamic assembly and locks in nanostructures.
  • Slow-forming networks exhibited a two-fold increase in toughness compared to fast-crosslinked networks.

Abstract

ABSTRACT The introduction of a secondary covalent polymer network is a powerful approach to extend the usable application range of supramolecular hydrogels. While it is recognized that dramatic changes in mechanics can occur with their addition, there is a lack of insight into the impact of added covalent polymers on hydrogels with underlying supramolecular filament nanostructures. Here we show that through controlling the rate of covalent network formation by the inverse electron‐demand Diels–Alder reaction, the mesoscale architecture of the supramolecular network can be programmed. Slow macromonomer crosslinking enables depletion‐induced supramolecular assembly of the supramolecular filaments into bundles above a critical macromonomer concentration, whereas rapid covalent network formation halts this dynamic process by effectively locking in the low‐nm scale supramolecular nanostructures. This kinetic difference further translates into mechanically distinct hydrogels, where slow‐forming hybrid networks reveal a two‐fold increase in toughness as compared to fast‐crosslinked networks, thanks to the bundled supramolecular filaments. Through harnessing the macromolecular crowding capacity of reactive macromonomers and their reaction kinetics, a new axis to control the hierarchical structure of supramolecular hydrogels through depletion forces is unlocked that can be exploited to shape this soft matter class for numerous applications.

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Cite This Study

Özel et al. (2026) studied this question.

synapsesocial.com/papers/69dc88d83afacbeac03eaa04https://doi.org/10.1002/anie.8845737
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