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dc.contributor.authorGachuz Vazquez, Edwin Jhonatan
dc.contributor.authorCastillo-Santillán, Martín
dc.contributor.authorJuárez-Moreno, Karla
dc.contributor.authorMaya-Cornejo, Jose
dc.contributor.authorMartínez-Richa, Antonio
dc.contributor.authorAndrio, Andreu
dc.contributor.authorCompañ, Vicente
dc.contributor.authorMota-Morales, Josue
dc.date.accessioned2020-11-16T12:26:51Z
dc.date.available2020-11-16T12:26:51Z
dc.date.issued2020-07-29
dc.identifier.citationGACHUZ, Edwin J., et al. Electrical conductivity of an all-natural and biocompatible semi-interpenetrating polymer network containing a deep eutectic solvent. Green Chemistry, 2020, vol. 22, no 17, p. 5785-5797.ca_CA
dc.identifier.urihttp://hdl.handle.net/10234/190344
dc.description.abstractA series of semi-interpenetrating polymer networks (semi-IPNs) consisting of crosslinked poly(itaconic acid) in the presence of the polysaccharide inulin were prepared by free-radical polymerization, taking advantage of the chemistry of deep eutectic systems (DESs). Up to 14 wt% of the polysaccharide inulin readily dissolves in a nonaqueous DES composed of glycerol (Gly) and choline chloride (ChCl). On the other hand, itaconic acid (IA) mixed with ChCl formed a deep eutectic solvent (DES) monomer, which upon free-radical polymerization in solution aided by multifunctional acrylates allowed the synthesis of highly crosslinked polymer networks. Bringing together both DESs, the DES monomer containing IA and the inert one containing inulin dissolved in it, allowed the synthesis of all-natural (ca. 96 wt% of biobased components, excluding crosslinkers) and biocompatible semi-IPNs. Remarkably, the DESs entrapped in the semi-IPNs served as a stable nonaqueous electrolyte in the range of 25–75 °C, thus exhibiting a typical Arrhenius dependence of conductivity with temperature (an apparent activation energy of 18 kJ mol−1 ), irrespective of the type of crosslinker used. Following electrode polarization (EP) analysis based on the Macdonald–Trukhan model, the free-ion diffusivity, the mobility, and the number of charge carrier density of the polymeric networks were calculated. The results show that diffusivity and mobility increase along with temperature in all semi-IPNs with a maximum conductivity of 3.2 mS cm−1 at 65 °C in the semi-IPN crosslinked with a trifunctional acrylate. The higher conductivity and diffusivity observed in the semi-IPN crosslinked with the trifunctional acrylate in comparison with the difunctional one are related to the long-translational diffusion, because the diffusive dynamics are dominated by the localized motions that are not strongly affected by the confinement of the DES electrolyte within the polymeric network. In summary, this work furthers the applications of DES chemistry towards the fabrication of greener materials, e.g. natural polymers and biobased feedstocks, with future applications in technologies seeking biocompatible conductive gels.ca_CA
dc.format.extent13 p.ca_CA
dc.format.mimetypeapplication/pdfca_CA
dc.language.isoengca_CA
dc.publisherRoyal Society of Chemistryca_CA
dc.relation.isPartOfGreen Chemistry, 2020, v. 22, p. 5785-5797ca_CA
dc.rights.urihttp://rightsstatements.org/vocab/CNE/1.0/*
dc.subjectDeep eutectic systems (DESs)ca_CA
dc.subjectSemi-interpenetrating polymer networks (semi-IPNs)ca_CA
dc.subjectFree-radical polymerizationca_CA
dc.subjectHighly crosslinked polymer networksca_CA
dc.subjectArrhenius dependence of conductivityca_CA
dc.subjectTrifunctional acrylateca_CA
dc.subjectHigher conductivity and diffusivityca_CA
dc.subjectBiocompatible conductive gels.ca_CA
dc.titleElectrical conductivity of an all-natural and biocompatible semi-interpenetrating polymer network containing a deep eutectic solventca_CA
dc.typeinfo:eu-repo/semantics/articleca_CA
dc.identifier.doihttps://doi.org/10.1039/D0GC02274H
dc.relation.projectID1) National Council of Science and Technology (CONACYT) through grant no. 252774; 2) PAPIIT-UNAM project no. IA202018 and TA200220, Mexico; 3) The National Laboratory for Characterization of Physicochemical Properties and Molecular Structure, CONACYT (Grant No. 123732); 4)ca_CA
dc.rights.accessRightsinfo:eu-repo/semantics/restrictedAccessca_CA
dc.relation.publisherVersionhttps://pubs.rsc.org/en/content/articlelanding/2020/gc/d0gc02274h#!divAbstractca_CA
dc.type.versioninfo:eu-repo/semantics/publishedVersionca_CA


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