Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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Wageningen University & Research

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (12/12 displayed)

  • 2023Covalent adaptable networks using boronate linkages by incorporating TetraAzaADamantanes8citations
  • 2023Covalent adaptable networks using boronate linkages by incorporating TetraAzaADamantanes8citations
  • 2023Internal hydrogen bonding of imines to control and enhance the dynamic mechanical properties of covalent adaptable networks9citations
  • 2023Metal Coordination in Polyimine Covalent Adaptable Networks for Tunable Material Properties and Enhanced Creep Resistance15citations
  • 2022Raman Spectroscopy Reveals Phase Separation in Imine-Based Covalent Adaptable Networks17citations
  • 2022Raman Spectroscopy Reveals Phase Separation in Imine-Based Covalent Adaptable Networks17citations
  • 2022Self-healing antifouling polymer brushes13citations
  • 2022Diblock and random antifouling bioactive polymer brushes on gold surfaces by visible-light-induced polymerization (SI-PET-RAFT) in water45citations
  • 2022Self-healing antifouling polymer brushes : Effects of degree of fluorination13citations
  • 2021Zwitterionic dendrimer – Polymer hybrid copolymers for self-assembling antifouling coatings7citations
  • 2021The effect of polarity on the molecular exchange dynamics in imine-based covalent adaptable networks59citations
  • 2020PLL-Poly(HPMA) Bottlebrush-Based Antifouling Coatings: Three Grafting Routes36citations

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Hurne, Simon Van
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Kisters, Marijn
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Van Hurne, Simon
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Zuilhof, Han
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Schoustra, Sybren K.
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De Heer Kloots, Martijn
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Doorn, Daphne Van
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Scheres, Luc
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Schoustra, S. K.
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Groeneveld, T.
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Co-Authors (by relevance)

  • Hurne, Simon Van
  • Kisters, Marijn
  • Van Hurne, Simon
  • Zuilhof, Han
  • Schoustra, Sybren K.
  • Asadi, Vahid
  • De Heer Kloots, Martijn
  • Doorn, Daphne Van
  • Dijksman, Joshua A.
  • Posthuma, Joris
  • De Heer Kloots, Martijn H. P.
  • Van Doorn, Daphne
  • Dam, Annemieke Van
  • Teunissen, Lucas
  • Fritz, Pina
  • Lagen, B. Van
  • Kuzmyn, Andriy R.
  • Van Dam, Annemieke
  • Scheres, Luc
  • Roeven, Esther
  • Schoustra, S. K.
  • Groeneveld, T.
  • Baggerman, Jacob
OrganizationsLocationPeople

article

The effect of polarity on the molecular exchange dynamics in imine-based covalent adaptable networks

  • Schoustra, S. K.
  • Groeneveld, T.
  • Smulders, Maarten M. J.
Abstract

Covalent adaptable networks (CANs) are a rising type of polymeric materials that consist of covalently crosslinked polymer chains, but with the inclusion of dynamic covalent bonds, and that can perform bond exchange reactions under equilibrium control. The dynamic behaviour of these exchange reactions within a polymer matrix has been established to be a key parameter in the control of the material properties. Therefore, in order to fully control the macroscopic material properties of CANs, understanding the underlying molecular exchange processes of these dynamic covalent bonds is essential. In this work, we studied the effect of polarity in polyimine-based CANs, and considered not only the network response itself, but also the – so far often overlooked – effect on the exchange dynamics. By combining results from kinetic studies and material analysis we were firstly able to show a distinct correlation between the presence of polar domains in the molecular structure and the thermal and dynamic mechanical properties of the materials. More importantly, the presence of polar domains also greatly affected the exchange kinetics of the dynamic imine bonds. On the molecular level, we showed that the imine exchange could be greatly enhanced (up to 20 times) when polar groups were present near the reactive imine species. As a result, in our polymer materials we established a tuneable range of phase transition temperatures from glass-to-rubber and rubber-to-liquid over roughly 100 °C as a result of either presence or absence of polar groups in the polymer matrix. Furthermore, detailed analysis in the stress relaxation behaviour of the polyimine materials revealed three relaxation processes, which we could attribute to the relaxation in network topology, to the imine exchange on a local level, and to the imine exchange as a result of diffusion through the polymer network. From this analysis we were also able to illustrate the effect of polarity on the polymer network to each of the three relaxation mechanisms.

Topics
  • impedance spectroscopy
  • inclusion
  • phase
  • glass
  • reactive
  • glass
  • phase transition
  • rubber
  • molecular structure