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Biomechanical behaviour of PEDOT:PSS-based hydrogels as an electrode for stent integrated enzyme biofuel cells

The possibility of creating a biofuel cell based on a metal stent was shown in this study. Given the existing stent implantation approaches, the integration of a biofuel cell into a stent naturally entails capacity for biofuel cells to be installed into a human body. As a counter electrode, a hydrog...

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Autores principales: Antipova, Christina G., Parunova, Yulia M., Vishnevskaya, Maria V., Krasheninnikov, Sergey V., Lukanina, Ksenia I., Grigoriev, Timofei E., Chvalun, Sergei N., Gotovtsev, Pavel M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8971615/
https://www.ncbi.nlm.nih.gov/pubmed/35368535
http://dx.doi.org/10.1016/j.heliyon.2022.e09218
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author Antipova, Christina G.
Parunova, Yulia M.
Vishnevskaya, Maria V.
Krasheninnikov, Sergey V.
Lukanina, Ksenia I.
Grigoriev, Timofei E.
Chvalun, Sergei N.
Gotovtsev, Pavel M.
author_facet Antipova, Christina G.
Parunova, Yulia M.
Vishnevskaya, Maria V.
Krasheninnikov, Sergey V.
Lukanina, Ksenia I.
Grigoriev, Timofei E.
Chvalun, Sergei N.
Gotovtsev, Pavel M.
author_sort Antipova, Christina G.
collection PubMed
description The possibility of creating a biofuel cell based on a metal stent was shown in this study. Given the existing stent implantation approaches, the integration of a biofuel cell into a stent naturally entails capacity for biofuel cells to be installed into a human body. As a counter electrode, a hydrogel based on iota-carrageenan, polyvinyl alcohol, and PEDOT:PSS, with an immobilized glucose oxidase enzyme, was proposed. Tension tests demonstrated that the hydrogel mechanical behavior resembles that of a bovine's vein. To obtain an analytical description, the deformation curves were fitted using Gent and Ogden models, prompting the fitting parameters which can be useful in further investigations. During cyclic biaxial studies the samples strength was shown to decreases insignificantly in the first 50 cycles and, further, remains stable up to more than 100 cycles. The biofuel cell was designed with the PEDOT:PSS based material as an anode and a Co–Cr self-expanding stent as a cathode. The maximum biofuel cell power density with a glucose concentration of 5 mM was 7.87 × 10(−5) W in phosphate buffer and 3.98 × 10(−5) W in blood mimicking buffer. Thus, the biofuel cell integration in the self-expanding stent was demonstrated.
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spelling pubmed-89716152022-04-02 Biomechanical behaviour of PEDOT:PSS-based hydrogels as an electrode for stent integrated enzyme biofuel cells Antipova, Christina G. Parunova, Yulia M. Vishnevskaya, Maria V. Krasheninnikov, Sergey V. Lukanina, Ksenia I. Grigoriev, Timofei E. Chvalun, Sergei N. Gotovtsev, Pavel M. Heliyon Research Article The possibility of creating a biofuel cell based on a metal stent was shown in this study. Given the existing stent implantation approaches, the integration of a biofuel cell into a stent naturally entails capacity for biofuel cells to be installed into a human body. As a counter electrode, a hydrogel based on iota-carrageenan, polyvinyl alcohol, and PEDOT:PSS, with an immobilized glucose oxidase enzyme, was proposed. Tension tests demonstrated that the hydrogel mechanical behavior resembles that of a bovine's vein. To obtain an analytical description, the deformation curves were fitted using Gent and Ogden models, prompting the fitting parameters which can be useful in further investigations. During cyclic biaxial studies the samples strength was shown to decreases insignificantly in the first 50 cycles and, further, remains stable up to more than 100 cycles. The biofuel cell was designed with the PEDOT:PSS based material as an anode and a Co–Cr self-expanding stent as a cathode. The maximum biofuel cell power density with a glucose concentration of 5 mM was 7.87 × 10(−5) W in phosphate buffer and 3.98 × 10(−5) W in blood mimicking buffer. Thus, the biofuel cell integration in the self-expanding stent was demonstrated. Elsevier 2022-03-29 /pmc/articles/PMC8971615/ /pubmed/35368535 http://dx.doi.org/10.1016/j.heliyon.2022.e09218 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Antipova, Christina G.
Parunova, Yulia M.
Vishnevskaya, Maria V.
Krasheninnikov, Sergey V.
Lukanina, Ksenia I.
Grigoriev, Timofei E.
Chvalun, Sergei N.
Gotovtsev, Pavel M.
Biomechanical behaviour of PEDOT:PSS-based hydrogels as an electrode for stent integrated enzyme biofuel cells
title Biomechanical behaviour of PEDOT:PSS-based hydrogels as an electrode for stent integrated enzyme biofuel cells
title_full Biomechanical behaviour of PEDOT:PSS-based hydrogels as an electrode for stent integrated enzyme biofuel cells
title_fullStr Biomechanical behaviour of PEDOT:PSS-based hydrogels as an electrode for stent integrated enzyme biofuel cells
title_full_unstemmed Biomechanical behaviour of PEDOT:PSS-based hydrogels as an electrode for stent integrated enzyme biofuel cells
title_short Biomechanical behaviour of PEDOT:PSS-based hydrogels as an electrode for stent integrated enzyme biofuel cells
title_sort biomechanical behaviour of pedot:pss-based hydrogels as an electrode for stent integrated enzyme biofuel cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8971615/
https://www.ncbi.nlm.nih.gov/pubmed/35368535
http://dx.doi.org/10.1016/j.heliyon.2022.e09218
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