• Title of article

    Porous alginate-Ca2+ hydrogels interpenetrated with PNIPAAm networks: Interrelationship between compressive stress and pore morphology

  • Author/Authors

    M?rcia R. de Moura، نويسنده , , Marcos R. Guilherme، نويسنده , , Gilsinei M. Campese، نويسنده , , Eduardo Radovanovic، نويسنده , , Adley F. Rubira، نويسنده , , Edvani C. Muniz، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2005
  • Pages
    8
  • From page
    2845
  • To page
    2852
  • Abstract
    Thermo-sensitive porous hydrogels composed of interpenetrated networks (IPN) of alginate-Ca2+ and PNIPAAm have been obtained. The hydrogels were prepared by cross-linking alginate-Na+ with Ca2+ ions inside PNIPAAm networks. Compressive tests and scanning electron microscopy were used to evaluate gel strength and pore morphology, respectively. IPN hydrogels displayed two distinct pore morphologies under thermal stimuli. Below 30–35 °C, the LCST of PNIPAAm in water, IPN hydrogels were highly porous. The pore size of hydrogel heated above LCST became progressively smaller. Alginate-Ca2+ and PNIPAAm hydrogels, used as references, did not present such behaviour, indicating that the porous effect is due to IPN hydrogel. It was verified that higher strength is achieved when the hydrogel presents small pore size and the temperature is increased. It is suggested that at temperatures above LCST, the PNIPAAm chains shrink and pull the alginate-Ca2+ networks back. During shrinking, the polymer chains occupy the open spaces (pores from which water is expelled), and therefore, the hydrogel becomes less deformable when subjected to compressive stress. The results presented in this work indicate that the mechanical properties as well as the pore morphologies of these IPN hydrogels can be tailored by thermal stimulus.
  • Keywords
    Alginate-PNIPAAm , Interpenetrating polymer networks , Porous hydrogels , morphology , Compression
  • Journal title
    European Polymer Journal(EPJ)
  • Serial Year
    2005
  • Journal title
    European Polymer Journal(EPJ)
  • Record number

    1212884