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August 24, 2026Angewandte Chemie0 citationsOpen Access

Impact of Threading State on the Mechanics of γ‐Cyclodextrin–Pyrene Gels

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JOJongwon OhHLHeyi LiangNNNatsumi Nitta

Key Points

  • To determine how switching the supramolecular threading state between doubly and singly threaded architectures influences the mechanical robustness and environmental responsiveness of cyclodextrin–pyrene gels.
  • Synthesized topology-engineered gels by copolymerizing 2-hydroxyethyl acrylate (HEA) with doubly threaded pseudo[4]rotaxane crosslinkers of γ-cyclodextrin and acrylate-end-capped pyrene derivatives.
  • Modulated the HEA/water ratio in pre-gel solutions to switch supramolecular crosslinking from doubly threaded slide-ring networks to singly threaded polyrotaxane covalent networks.
  • Characterized the solvent-dependent swelling, fluorescence, viscoelasticity, and tensile deformation behaviors of the resulting networks alongside covalent controls.
  • Doubly threaded networks achieved extreme extensibility with >1050% strain at break along with strain rate-dependent stiffening and rupture.
  • The doubly threaded architecture uniquely combined high toughness with low hysteresis under cyclic mechanical deformation compared to singly threaded and covalent controls.
  • Solvent-responsive fluorescence, swelling, and viscoelastic shifts occurred exclusively in networks possessing the doubly threaded slide-ring topology.

Abstract

ABSTRACT Conventional covalent and supramolecular crosslinks impose inherent trade‐offs between mechanical robustness and environmental adaptability in polymer networks. Mechanically interlocked junctions offer an alternative route by enabling topological motion without compromising structural integrity. Here, a modular approach is reported to construct topology‐engineered gels by copolymerizing 2‐hydroxyethyl acrylate (HEA) with doubly threaded (dt‐) pseudo4rotaxane crosslinkers, formed via the complexation of γ‐cyclodextrin (γ‐CD) and acrylate‐end‐capped pyrene derivatives. By tuning the HEA/water ratio in pre‐gel formulations, the supramolecular assembly can be shifted from dt‐ to singly threaded (st‐) entities, enabling access to gels with the same chemical composition but different architectures—dt‐slide ring network versus st‐polyrotaxane covalent network. The dt‐network exhibits solvent‐dependent fluorescence, swelling, and viscoelasticity that is not observed in either the st‐network or a covalent control gel. Mechanical testing of the bulk networks reveals that the dt‐network exhibits high extensibility (>1050% strain at break), strain rate‐dependent stiffening and rupture, and a favorable combination of high toughness and comparatively low hysteresis under cyclic deformation that is not observed in the networks lacking the dt‐architecture. Overall, these results establish a structure–property relationship dictated by crosslinking topology, demonstrating how dt‐interlocked motifs can encode both mechanical performance and environmental responsiveness in soft materials.

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Cite This Study

Oh et al. (2026) studied this question.

synapsesocial.com/papers/6a8c00c1bca056c88e6df9d3https://doi.org/10.1002/ange.1958506
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