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March 8, 2026Journal of the American Chemical Society3 citationsOpen Access

Polyacrylate Vitrimer Network via In Situ Isocyanide Copolymerization: Synthesis and Molecular Dynamics

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HSHan-Li SunSDStavros X. DrakopoulosLČLejla Čamdžić

Key Points

  • This research aims to develop sustainable materials using polyacrylate vitrimers through isocyanide copolymerization.
  • One-step photocopolymerization of multifunctional isocyanides was performed to create cross-linked polyacrylate networks.
  • Broadband dielectric spectroscopy was used to analyze bond-exchange relaxation and defect healing.
  • Mechanical performance was evaluated after multiple processing cycles.
  • The resulting vitrimers maintained comparable mechanical performance after three processing cycles.
  • A significant relationship between bond-exchange relaxation and electrical conductivity was established.
  • Dynamic covalent bonds were found to enhance charge transport within the materials.

Abstract

Widespread plastic pollution highlights the urgent need for materials with sustainable end-of-life management. Vitrimers, cross-linked polymers containing dynamic covalent bonds, combine the durability of thermosets with their recyclability. Here, we report a one-step photocopolymerization using multifunctional isocyanides as readily accessible cross-linkers that directly introduce vinylogous urethane-like linkages into polyacrylate networks, structures difficult to obtain via amine-β-ketoester condensation. The resulting materials show good reprocessability, maintaining a comparable mechanical performance after three processing cycles. Broadband dielectric spectroscopy (BDS) reveals that the temperature dependence of the bond-exchange relaxation times evolves from a kink-like response in fresh samples to Arrhenius behavior after annealing, visualizing topological rearrangement and defect healing. A scaling relationship between bond-exchange relaxation and electrical conductivity establishes that the former is the underlying mechanism for charge transport in vitrimers. Furthermore, dipolar intermediates generated during bond exchange increase the dielectric permittivity, providing new insight into designing sustainable dielectric materials.

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Cite This Study

Sun et al. (2026) studied this question.

synapsesocial.com/papers/69acc5bd32b0ef16a4050677https://doi.org/10.1021/jacs.5c22502
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