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In situ polymerization and electrical conductivity of polypyrrole/cellulose nanocomposites using Schweizer's reagent

Cellulose-based composites have attracted interest given the shift towards ‘green’ materials, but achieving uniform dispersions of cellulose in polymer matrices and/or enhancement of interfacial interactions between components remains challenging. Herein we report the preparation of polypyrrole/cell...

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Autores principales: Fraser, Stephanie A., van Zyl, Werner E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9361926/
https://www.ncbi.nlm.nih.gov/pubmed/36043106
http://dx.doi.org/10.1039/d2ra04320c
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author Fraser, Stephanie A.
van Zyl, Werner E.
author_facet Fraser, Stephanie A.
van Zyl, Werner E.
author_sort Fraser, Stephanie A.
collection PubMed
description Cellulose-based composites have attracted interest given the shift towards ‘green’ materials, but achieving uniform dispersions of cellulose in polymer matrices and/or enhancement of interfacial interactions between components remains challenging. Herein we report the preparation of polypyrrole/cellulose nanocomposites in [Cu(NH(3))(4)(H(2)O)(2)](OH)(2) (Schweizer's reagent/cuoxam)-based reaction media via in situ polymerization. The effect of cellulose template morphology and reaction media on the microstructure, electrical conductivity, and surface wettability was studied. Aqueous reaction media favored the formation of a uniform polypyrrole coating encapsulating the cellulose fibers; concentrated cuoxam solutions promoted inhomogeneity and exhibited a progressive decline in conductivity. The maximum conductivity attained was 3.08 S cm(−1) from a bacterial cellulose-templated composite prepared in aqueous reaction media and afforded an approximately threefold increase in conductivity when compared with pure PPy at 1.14 S cm(−1). Generally, the composites resembled wetting surfaces – with highly concentrated cuoxam solutions yielding improved hydrophilicity, while substitution of bacterial cellulose with nanocrystalline cellulose engendered a shift towards hydrophobicity. Most composites displayed a contact angle of less than 90° suggesting PPy/cellulose composites tended towards hydrophilic behavior. This study highlights investigations into the viability of cellulose solvents as a facile means to control the structure and performance of in situ functionalized cellulose nanocomposites.
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spelling pubmed-93619262022-08-29 In situ polymerization and electrical conductivity of polypyrrole/cellulose nanocomposites using Schweizer's reagent Fraser, Stephanie A. van Zyl, Werner E. RSC Adv Chemistry Cellulose-based composites have attracted interest given the shift towards ‘green’ materials, but achieving uniform dispersions of cellulose in polymer matrices and/or enhancement of interfacial interactions between components remains challenging. Herein we report the preparation of polypyrrole/cellulose nanocomposites in [Cu(NH(3))(4)(H(2)O)(2)](OH)(2) (Schweizer's reagent/cuoxam)-based reaction media via in situ polymerization. The effect of cellulose template morphology and reaction media on the microstructure, electrical conductivity, and surface wettability was studied. Aqueous reaction media favored the formation of a uniform polypyrrole coating encapsulating the cellulose fibers; concentrated cuoxam solutions promoted inhomogeneity and exhibited a progressive decline in conductivity. The maximum conductivity attained was 3.08 S cm(−1) from a bacterial cellulose-templated composite prepared in aqueous reaction media and afforded an approximately threefold increase in conductivity when compared with pure PPy at 1.14 S cm(−1). Generally, the composites resembled wetting surfaces – with highly concentrated cuoxam solutions yielding improved hydrophilicity, while substitution of bacterial cellulose with nanocrystalline cellulose engendered a shift towards hydrophobicity. Most composites displayed a contact angle of less than 90° suggesting PPy/cellulose composites tended towards hydrophilic behavior. This study highlights investigations into the viability of cellulose solvents as a facile means to control the structure and performance of in situ functionalized cellulose nanocomposites. The Royal Society of Chemistry 2022-08-09 /pmc/articles/PMC9361926/ /pubmed/36043106 http://dx.doi.org/10.1039/d2ra04320c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Fraser, Stephanie A.
van Zyl, Werner E.
In situ polymerization and electrical conductivity of polypyrrole/cellulose nanocomposites using Schweizer's reagent
title In situ polymerization and electrical conductivity of polypyrrole/cellulose nanocomposites using Schweizer's reagent
title_full In situ polymerization and electrical conductivity of polypyrrole/cellulose nanocomposites using Schweizer's reagent
title_fullStr In situ polymerization and electrical conductivity of polypyrrole/cellulose nanocomposites using Schweizer's reagent
title_full_unstemmed In situ polymerization and electrical conductivity of polypyrrole/cellulose nanocomposites using Schweizer's reagent
title_short In situ polymerization and electrical conductivity of polypyrrole/cellulose nanocomposites using Schweizer's reagent
title_sort in situ polymerization and electrical conductivity of polypyrrole/cellulose nanocomposites using schweizer's reagent
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9361926/
https://www.ncbi.nlm.nih.gov/pubmed/36043106
http://dx.doi.org/10.1039/d2ra04320c
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