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Polymer-Based Conductive Nanocomposites for the Development of Bioanodes Using Membrane-Bound Enzyme Systems of Bacteria Gluconobacter oxydans in Biofuel Cells

The development of biofuel cells (BFCs) currently has high potential since these devices can be used as alternative energy sources. This work studies promising materials for biomaterial immobilization in bioelectrochemical devices based on a comparative analysis of the energy characteristics (genera...

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Autores principales: Fedina, Veronika, Lavrova, Daria, Dyachkova, Tatyana, Pasko, Anastasia, Zvonarev, Anton, Panfilov, Victor, Ponamoreva, Olga, Alferov, Sergey
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10007125/
https://www.ncbi.nlm.nih.gov/pubmed/36904536
http://dx.doi.org/10.3390/polym15051296
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author Fedina, Veronika
Lavrova, Daria
Dyachkova, Tatyana
Pasko, Anastasia
Zvonarev, Anton
Panfilov, Victor
Ponamoreva, Olga
Alferov, Sergey
author_facet Fedina, Veronika
Lavrova, Daria
Dyachkova, Tatyana
Pasko, Anastasia
Zvonarev, Anton
Panfilov, Victor
Ponamoreva, Olga
Alferov, Sergey
author_sort Fedina, Veronika
collection PubMed
description The development of biofuel cells (BFCs) currently has high potential since these devices can be used as alternative energy sources. This work studies promising materials for biomaterial immobilization in bioelectrochemical devices based on a comparative analysis of the energy characteristics (generated potential, internal resistance, power) of biofuel cells. Bioanodes are formed by the immobilization of membrane-bound enzyme systems of Gluconobacter oxydans VKM V-1280 bacteria containing pyrroloquinolinquinone-dependent dehydrogenases into hydrogels of polymer-based composites with carbon nanotubes. Natural and synthetic polymers are used as matrices, and multi-walled carbon nanotubes oxidized in hydrogen peroxide vapor (MWCNTox) are used as fillers. The intensity ratio of two characteristic peaks associated with the presence of atoms C in the sp(3) and sp(2) hybridization for the pristine and oxidized materials is 0.933 and 0.766, respectively. This proves a reduced degree of MWCNTox defectiveness compared to the pristine nanotubes. MWCNTox in the bioanode composites significantly improve the energy characteristics of the BFCs. Chitosan hydrogel in composition with MWCNTox is the most promising material for biocatalyst immobilization for the development of bioelectrochemical systems. The maximum power density was 1.39 × 10(−5) W/mm(2), which is 2 times higher than the power of BFCs based on other polymer nanocomposites.
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spelling pubmed-100071252023-03-12 Polymer-Based Conductive Nanocomposites for the Development of Bioanodes Using Membrane-Bound Enzyme Systems of Bacteria Gluconobacter oxydans in Biofuel Cells Fedina, Veronika Lavrova, Daria Dyachkova, Tatyana Pasko, Anastasia Zvonarev, Anton Panfilov, Victor Ponamoreva, Olga Alferov, Sergey Polymers (Basel) Article The development of biofuel cells (BFCs) currently has high potential since these devices can be used as alternative energy sources. This work studies promising materials for biomaterial immobilization in bioelectrochemical devices based on a comparative analysis of the energy characteristics (generated potential, internal resistance, power) of biofuel cells. Bioanodes are formed by the immobilization of membrane-bound enzyme systems of Gluconobacter oxydans VKM V-1280 bacteria containing pyrroloquinolinquinone-dependent dehydrogenases into hydrogels of polymer-based composites with carbon nanotubes. Natural and synthetic polymers are used as matrices, and multi-walled carbon nanotubes oxidized in hydrogen peroxide vapor (MWCNTox) are used as fillers. The intensity ratio of two characteristic peaks associated with the presence of atoms C in the sp(3) and sp(2) hybridization for the pristine and oxidized materials is 0.933 and 0.766, respectively. This proves a reduced degree of MWCNTox defectiveness compared to the pristine nanotubes. MWCNTox in the bioanode composites significantly improve the energy characteristics of the BFCs. Chitosan hydrogel in composition with MWCNTox is the most promising material for biocatalyst immobilization for the development of bioelectrochemical systems. The maximum power density was 1.39 × 10(−5) W/mm(2), which is 2 times higher than the power of BFCs based on other polymer nanocomposites. MDPI 2023-03-03 /pmc/articles/PMC10007125/ /pubmed/36904536 http://dx.doi.org/10.3390/polym15051296 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Fedina, Veronika
Lavrova, Daria
Dyachkova, Tatyana
Pasko, Anastasia
Zvonarev, Anton
Panfilov, Victor
Ponamoreva, Olga
Alferov, Sergey
Polymer-Based Conductive Nanocomposites for the Development of Bioanodes Using Membrane-Bound Enzyme Systems of Bacteria Gluconobacter oxydans in Biofuel Cells
title Polymer-Based Conductive Nanocomposites for the Development of Bioanodes Using Membrane-Bound Enzyme Systems of Bacteria Gluconobacter oxydans in Biofuel Cells
title_full Polymer-Based Conductive Nanocomposites for the Development of Bioanodes Using Membrane-Bound Enzyme Systems of Bacteria Gluconobacter oxydans in Biofuel Cells
title_fullStr Polymer-Based Conductive Nanocomposites for the Development of Bioanodes Using Membrane-Bound Enzyme Systems of Bacteria Gluconobacter oxydans in Biofuel Cells
title_full_unstemmed Polymer-Based Conductive Nanocomposites for the Development of Bioanodes Using Membrane-Bound Enzyme Systems of Bacteria Gluconobacter oxydans in Biofuel Cells
title_short Polymer-Based Conductive Nanocomposites for the Development of Bioanodes Using Membrane-Bound Enzyme Systems of Bacteria Gluconobacter oxydans in Biofuel Cells
title_sort polymer-based conductive nanocomposites for the development of bioanodes using membrane-bound enzyme systems of bacteria gluconobacter oxydans in biofuel cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10007125/
https://www.ncbi.nlm.nih.gov/pubmed/36904536
http://dx.doi.org/10.3390/polym15051296
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