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Advanced Synthesis of Conductive Polyaniline Using Laccase as Biocatalyst

Polyaniline is a conductive polymer with distinctive optical and electrical properties. Its enzymatic synthesis is an environmentally friendly alternative to the use of harsh oxidants and extremely acidic conditions. 7D5L, a high-redox potential laccase developed in our lab, is the biocatalyst of ch...

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Autores principales: de Salas, Felipe, Pardo, Isabel, Salavagione, Horacio J., Aza, Pablo, Amougi, Eleni, Vind, Jesper, Martínez, Angel T., Camarero, Susana
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5065195/
https://www.ncbi.nlm.nih.gov/pubmed/27741301
http://dx.doi.org/10.1371/journal.pone.0164958
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author de Salas, Felipe
Pardo, Isabel
Salavagione, Horacio J.
Aza, Pablo
Amougi, Eleni
Vind, Jesper
Martínez, Angel T.
Camarero, Susana
author_facet de Salas, Felipe
Pardo, Isabel
Salavagione, Horacio J.
Aza, Pablo
Amougi, Eleni
Vind, Jesper
Martínez, Angel T.
Camarero, Susana
author_sort de Salas, Felipe
collection PubMed
description Polyaniline is a conductive polymer with distinctive optical and electrical properties. Its enzymatic synthesis is an environmentally friendly alternative to the use of harsh oxidants and extremely acidic conditions. 7D5L, a high-redox potential laccase developed in our lab, is the biocatalyst of choice for the synthesis of green polyaniline (emeraldine salt) due to its superior ability to oxidize aniline and kinetic stability at the required polymerization conditions (pH 3 and presence of anionic surfactants) as compared with other fungal laccases. Doses as low as 7.6 nM of 7D5L catalyze the polymerization of 15 mM aniline (in 24 h, room temperature, 7% yield) in the presence of different anionic surfactants used as doping templates to provide linear and water-soluble polymers. Aniline polymerization was monitored by the increase of the polaron absorption band at 800 nm (typical for emeraldine salt). Best polymerization results were obtained with 5 mM sodium dodecylbenzenesulfonate (SDBS) as template. At fixed conditions (15 mM aniline and 5mM SDBS), polymerization rates obtained with 7D5L were 2.5-fold the rates obtained with commercial Trametes villosa laccase. Moreover, polyaniline yield was notably boosted to 75% by rising 7D5L amount to 0.15 μM, obtaining 1g of green polyaniline in 1L-reaction volume. The green polymer obtained with the selected system (7D5L/SDBS) holds excellent electrochemical and electro-conductive properties displayed in water-dispersible nanofibers, which is advantageous for the nanomaterial to be readily cast into uniform films for different applications.
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spelling pubmed-50651952016-10-27 Advanced Synthesis of Conductive Polyaniline Using Laccase as Biocatalyst de Salas, Felipe Pardo, Isabel Salavagione, Horacio J. Aza, Pablo Amougi, Eleni Vind, Jesper Martínez, Angel T. Camarero, Susana PLoS One Research Article Polyaniline is a conductive polymer with distinctive optical and electrical properties. Its enzymatic synthesis is an environmentally friendly alternative to the use of harsh oxidants and extremely acidic conditions. 7D5L, a high-redox potential laccase developed in our lab, is the biocatalyst of choice for the synthesis of green polyaniline (emeraldine salt) due to its superior ability to oxidize aniline and kinetic stability at the required polymerization conditions (pH 3 and presence of anionic surfactants) as compared with other fungal laccases. Doses as low as 7.6 nM of 7D5L catalyze the polymerization of 15 mM aniline (in 24 h, room temperature, 7% yield) in the presence of different anionic surfactants used as doping templates to provide linear and water-soluble polymers. Aniline polymerization was monitored by the increase of the polaron absorption band at 800 nm (typical for emeraldine salt). Best polymerization results were obtained with 5 mM sodium dodecylbenzenesulfonate (SDBS) as template. At fixed conditions (15 mM aniline and 5mM SDBS), polymerization rates obtained with 7D5L were 2.5-fold the rates obtained with commercial Trametes villosa laccase. Moreover, polyaniline yield was notably boosted to 75% by rising 7D5L amount to 0.15 μM, obtaining 1g of green polyaniline in 1L-reaction volume. The green polymer obtained with the selected system (7D5L/SDBS) holds excellent electrochemical and electro-conductive properties displayed in water-dispersible nanofibers, which is advantageous for the nanomaterial to be readily cast into uniform films for different applications. Public Library of Science 2016-10-14 /pmc/articles/PMC5065195/ /pubmed/27741301 http://dx.doi.org/10.1371/journal.pone.0164958 Text en © 2016 de Salas et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
de Salas, Felipe
Pardo, Isabel
Salavagione, Horacio J.
Aza, Pablo
Amougi, Eleni
Vind, Jesper
Martínez, Angel T.
Camarero, Susana
Advanced Synthesis of Conductive Polyaniline Using Laccase as Biocatalyst
title Advanced Synthesis of Conductive Polyaniline Using Laccase as Biocatalyst
title_full Advanced Synthesis of Conductive Polyaniline Using Laccase as Biocatalyst
title_fullStr Advanced Synthesis of Conductive Polyaniline Using Laccase as Biocatalyst
title_full_unstemmed Advanced Synthesis of Conductive Polyaniline Using Laccase as Biocatalyst
title_short Advanced Synthesis of Conductive Polyaniline Using Laccase as Biocatalyst
title_sort advanced synthesis of conductive polyaniline using laccase as biocatalyst
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5065195/
https://www.ncbi.nlm.nih.gov/pubmed/27741301
http://dx.doi.org/10.1371/journal.pone.0164958
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