Synthesis, self-assembly, and photomechanical actuator performance of a sequence-defined polyviologen crosslinker

  • Abigail O. Delawder
  • , Anusree Natraj
  • , Nathan D. Colley
  • , Tiana Saak
  • , Angelique F. Greene
  • , Jonathan C. Barnes

Research output: Contribution to journalArticlepeer-review

11 Scopus citations

Abstract

Although it is well known that viologen radical cations can self-assemble into stacks or complexes on account of radical-radical pairing interactions, it has only recently been demonstrated that reduction of main-chain polyviologens integrated into hydrogel networks can trigger actuation. In these earlier examples, hydrogels comprising oligoethylene glycol-based polyviologens and poly(ethylene glycol) were functionalized with terminal azide groups to prepare ‘click’-based gels. Here, we report a new structural design for the functional polyviologen that consists of main-chain viologen subunits separated by hexamethylene groups instead of glycols and is capped at each end with styrene groups. Activation of this viologen-based macrocrosslinker was achieved using chemical- and photoreduction methods and its ability to undergo intramolecular chain-folding was monitored by absorption spectroscopy. Acrylate-based organogels and hydrogels were also prepared and a comparison was carried out to assess the actuator performance in each gel in terms of the rate of contraction and changes in stiffness.

Original languageEnglish
Pages (from-to)523-531
Number of pages9
JournalSupramolecular Chemistry
Volume31
Issue number8
DOIs
StatePublished - Aug 3 2019

Keywords

  • macrocrosslinker
  • photoredox catalysis
  • Redox-responsive materials
  • viologens

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