4.7 Article

Modulation of Molecular Structure and Mechanical Properties of κ-Carrageenan-Gelatin Hydrogel with Multi-Walled Carbon Nanotubes

期刊

POLYMERS
卷 14, 期 12, 页码 -

出版社

MDPI
DOI: 10.3390/polym14122346

关键词

kappa-carrageenan; gelatin; protein-polysaccharide hydrogels; carbon nanotubes; structure; rheological properties

资金

  1. government assignment for FRC Kazan Scientific Center of RAS
  2. Kazan Federal University Strategic Academic Leadership Program (PRIORITY-2030)

向作者/读者索取更多资源

This study investigates the structure and properties of hydrogel based on gelatin, kappa-carrageenan, and CNTs. The results show that the integration of polysaccharide and protein in the composite hydrogel leads to suppression of their individual structural features and homogenization of the components. Additionally, carbon nanotubes act as a supplementary template, enhancing the mechanical properties of the system.
Hydrogels, three-dimensional hydrophilic water-insoluble polymer networks having mechanical properties inherent for solids, have attracted continuous research attention over a long time period. Here, we studied the structure and properties of hydrogel based on gelatin, kappa-carrageenan and CNTs using the combination of SAXS, PXRD, AFM microscopy, SEM and rheology methods. We have shown that the integration of polysaccharide and protein in the composite hydrogel leads to suppression of their individual structural features and homogenization of two macromolecular components into a single structural formation. According to obtained SAXS results, we observed the supramolecular complex, which includes both polysaccharide and protein components associated with each other. It was determined that hydrogel structure formed in the initial solution state (dispersion) retains hydrogel supramolecular structure under its cooling up to gel state. The sizes of dense cores of these polyelectrolyte complexes (PEC) slightly decrease in the gel state in comparison with PEC water dispersion. The introduction of CNTs to hydrogel does not principally change the type of supramolecular structure and common structural tendencies observed for dispersion and gel states of the system. It was shown that carbon nanotubes embedded in hydrogel act as the supplementary template for formation of the three-dimensional net, giving additional mechanical strengthening to the studied system.

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