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Conductive Tough Hydrogel for Bioapplications
Author(s) -
Javadi Mohammad,
Gu Qi,
Naficy Sina,
Farajikhah Syamak,
Crook Jeremy M.,
Wallace Gordon G.,
Beirne Stephen,
Moulton Simon E.
Publication year - 2018
Publication title -
macromolecular bioscience
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.924
H-Index - 105
eISSN - 1616-5195
pISSN - 1616-5187
DOI - 10.1002/mabi.201700270
Subject(s) - biocompatibility , materials science , self healing hydrogels , pedot:pss , composite number , biocompatible material , elastomer , polyurethane , bioelectronics , nanotechnology , ultimate tensile strength , composite material , polymer , biomedical engineering , polymer chemistry , biosensor , medicine , metallurgy
Biocompatible conductive tough hydrogels represent a new class of advanced materials combining the properties of tough hydrogels and biocompatible conductors. Here, a simple method, to achieve a self‐assembled tough elastomeric composite structure that is biocompatible, conductive, and with high flexibility, is reported. The hydrogel comprises polyether‐based liner polyurethane (PU), poly(3,4‐ethylenedioxythiophene) (PEDOT) doped with poly(4‐styrenesulfonate) (PSS), and liquid crystal graphene oxide (LCGO). The polyurethane hybrid composite (PUHC) containing the PEDOT:PSS, LCGO, and PU has a higher electrical conductivity (10 × ), tensile modulus (>1.6 × ), and yield strength (>1.56 × ) compared to respective control samples. Furthermore, the PUHC is biocompatible and can support human neural stem cell (NSC) growth and differentiation to neurons and supporting neuroglia. Moreover, the stimulation of PUHC enhances NSC differentiation with enhanced neuritogenesis compared to unstimulated cultures. A model describing the synergistic effects of the PUHC components and their influence on the uniformity, biocompatibility, and electromechanical properties of the hydrogel is presented.

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