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Evaluation of Conductive Porous Biobased Composites with Tunable Mechanical Properties for Potential Biological Applications. | LitMetric

AI Article Synopsis

  • Researchers developed starch-based porous cryogels aimed at tissue engineering, combining materials like κ-carrageenan, PVA, and SbQ.
  • They created a conductive version of the cryogel by oxidizing EDOT to enhance electrical properties, utilizing iron(III) p-toluenesulfonate.
  • Tests showed that varying biopolymer content could effectively tune the cryogel's mechanical properties, with κ-carrageenan enhancing stiffness and PVA acting as a plasticizer, while cross-linking with PVA-SBQ further improved these properties.

Article Abstract

In this work, starch-based porous cryogels with controlled mechanical and electrical properties were prepared for tissue engineering applications. The starch cryogels were formulated using κ-carrageenan, poly(vinyl alcohol) (PVA), and styrylpyridinium-substituted PVA (SbQ) into the composite. A conductive cryogel was polymerized by chemical oxidation of 3,4-ethylenedioxythiophene (EDOT) using iron(III) p-toluenesulfonate as a strategy to control the electrical properties. The physical, thermal, and mechanical properties were evaluated for the obtained composites. Macro- and nanoscale results confirmed the capability of tuning the mechanical properties of the material by the addition of biopolymers in different contents. The presence of κ-carrageenan significantly increased the storage modulus and decreased the damping effect in the formulations. The presence of PVA showed a plasticizing effect in the formulations, confirmed by the buffering effect and an increase in storage modulus. PVA-SBQ improved the mechanical properties by cross-linking. The addition of PEDOT increased the mechanical and electrical properties of the obtained materials.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11525745PMC
http://dx.doi.org/10.1021/acsomega.4c04391DOI Listing

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