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Rheological Analysis of Hydrogel Composites Containing Carbon Nanobrushes
Conference proceeding

Rheological Analysis of Hydrogel Composites Containing Carbon Nanobrushes

William H. Marks, Tunc Kiymaz, Sze C. Yang, George W. Dombi, Sujata K. Bhatia and IEEE
2013 39th Annual Northeast Bioengineering Conference, 6574381
Apr 2013
url
https://digitalcommons.uri.edu/chm_facpubs/901View
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Abstract

Carbon carbon nanobrushes Carbon nanotubes conductive hydrogel Educational institutions Fibroblasts poloxamer hydrogel rheometry Tissue engineering wound healing Wounds
The objective of this work is to examine the rheological properties of hydrogel comosites containing carbon nanobrushes. The composite, which is electrically conductive, is comprised of carbon nanobrushes embedded in a biocompatible poloxamer gel. This work assesses the ability of such composite gels to act as a matrix for tissue engineering, specifically for connective tissue. In such a model, chondrocytes would be seeded within the hydrogel matrix and then injected into the body. This work analyzes the rheological differences between hydrogels of different concentrations. The work also demonstrates that carbon nanobrushes can be dispersed within poloxamer gels. Previously it has been shown that fibroblasts and myocytes can proliferate within homogenously dispersed carbon nanobrush-containing poloxamer gels. Future work will examine the effects of design parameters including carbon nanobrush content and matrix structure on wound healing, chondrocyte proliferation within the hydrogel composites, and mechanical properties of the gels. This work has relevance for tissue engineering and tissue regeneration in clinical medicine.

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Collaboration types
Domestic collaboration
Web of Science research areas
Engineering, Biomedical
Engineering, Electrical & Electronic
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