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Probing of complex carbon nanofiber paper as gas-diffusion electrode for high temperature polymer electrolyte membrane fuel cell

The development of fuel cells is an important part of alternative energy studies. High-temperature polymer electrolyte membrane fuel cell (HT-PEMFC) is a very promising and commercialized type of fuel cell since it allows the use of hydrogen contaminated with CO. However, current advances in HT-PEMF...

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Autores principales: Ponomarev, Igor I., Skupov, Kirill M., Naumkin, Alexander V., Basu, Victoria G., Zhigalina, Olga M., Razorenov, Dmitry Y., Ponomarev, Ivan I., Volkova, Yulia A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9059279/
https://www.ncbi.nlm.nih.gov/pubmed/35521606
http://dx.doi.org/10.1039/c8ra07177b
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author Ponomarev, Igor I.
Skupov, Kirill M.
Naumkin, Alexander V.
Basu, Victoria G.
Zhigalina, Olga M.
Razorenov, Dmitry Y.
Ponomarev, Ivan I.
Volkova, Yulia A.
author_facet Ponomarev, Igor I.
Skupov, Kirill M.
Naumkin, Alexander V.
Basu, Victoria G.
Zhigalina, Olga M.
Razorenov, Dmitry Y.
Ponomarev, Ivan I.
Volkova, Yulia A.
author_sort Ponomarev, Igor I.
collection PubMed
description The development of fuel cells is an important part of alternative energy studies. High-temperature polymer electrolyte membrane fuel cell (HT-PEMFC) is a very promising and commercialized type of fuel cell since it allows the use of hydrogen contaminated with CO. However, current advances in HT-PEMFC are based on searching for more sustainable materials for the membrane electrode assembly. The key issue is to find new, more stable carbonaceous Pt-electrocatalyst supports instead of the traditional carbon black powder. In the present study, we primarily demonstrate a new electrode design concept. Complex carbon nanofiber paper (CNFP) electrodes, obtained by polyacrylonitrile (PAN) electrospinning with further pyrolysis at 900–1200 °C, are suitable for platinum deposition and were probed as the gas-diffusion electrode for HT-PEMFC. Complex composite electrodes were obtained by introducing zirconium and nickel salts into the electrospinning PAN solution. After pyrolysis, ZrO(x) and Ni(0) nanoparticles were distributed in the CNFP throughout the whole nanofiber volume, as it is seen in the high-resolution transmission electron microscopy images. The samples were thoroughly studied by X-ray photoelectron, Raman and impedance spectroscopy, cyclic voltammetry, and elemental analysis. The MEAs designed on platinized composite CNFPs demonstrate higher performance at 180 °C compared to non-composite ones and are comparable with commercial Celtec® P1000.
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spelling pubmed-90592792022-05-04 Probing of complex carbon nanofiber paper as gas-diffusion electrode for high temperature polymer electrolyte membrane fuel cell Ponomarev, Igor I. Skupov, Kirill M. Naumkin, Alexander V. Basu, Victoria G. Zhigalina, Olga M. Razorenov, Dmitry Y. Ponomarev, Ivan I. Volkova, Yulia A. RSC Adv Chemistry The development of fuel cells is an important part of alternative energy studies. High-temperature polymer electrolyte membrane fuel cell (HT-PEMFC) is a very promising and commercialized type of fuel cell since it allows the use of hydrogen contaminated with CO. However, current advances in HT-PEMFC are based on searching for more sustainable materials for the membrane electrode assembly. The key issue is to find new, more stable carbonaceous Pt-electrocatalyst supports instead of the traditional carbon black powder. In the present study, we primarily demonstrate a new electrode design concept. Complex carbon nanofiber paper (CNFP) electrodes, obtained by polyacrylonitrile (PAN) electrospinning with further pyrolysis at 900–1200 °C, are suitable for platinum deposition and were probed as the gas-diffusion electrode for HT-PEMFC. Complex composite electrodes were obtained by introducing zirconium and nickel salts into the electrospinning PAN solution. After pyrolysis, ZrO(x) and Ni(0) nanoparticles were distributed in the CNFP throughout the whole nanofiber volume, as it is seen in the high-resolution transmission electron microscopy images. The samples were thoroughly studied by X-ray photoelectron, Raman and impedance spectroscopy, cyclic voltammetry, and elemental analysis. The MEAs designed on platinized composite CNFPs demonstrate higher performance at 180 °C compared to non-composite ones and are comparable with commercial Celtec® P1000. The Royal Society of Chemistry 2019-01-10 /pmc/articles/PMC9059279/ /pubmed/35521606 http://dx.doi.org/10.1039/c8ra07177b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ponomarev, Igor I.
Skupov, Kirill M.
Naumkin, Alexander V.
Basu, Victoria G.
Zhigalina, Olga M.
Razorenov, Dmitry Y.
Ponomarev, Ivan I.
Volkova, Yulia A.
Probing of complex carbon nanofiber paper as gas-diffusion electrode for high temperature polymer electrolyte membrane fuel cell
title Probing of complex carbon nanofiber paper as gas-diffusion electrode for high temperature polymer electrolyte membrane fuel cell
title_full Probing of complex carbon nanofiber paper as gas-diffusion electrode for high temperature polymer electrolyte membrane fuel cell
title_fullStr Probing of complex carbon nanofiber paper as gas-diffusion electrode for high temperature polymer electrolyte membrane fuel cell
title_full_unstemmed Probing of complex carbon nanofiber paper as gas-diffusion electrode for high temperature polymer electrolyte membrane fuel cell
title_short Probing of complex carbon nanofiber paper as gas-diffusion electrode for high temperature polymer electrolyte membrane fuel cell
title_sort probing of complex carbon nanofiber paper as gas-diffusion electrode for high temperature polymer electrolyte membrane fuel cell
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9059279/
https://www.ncbi.nlm.nih.gov/pubmed/35521606
http://dx.doi.org/10.1039/c8ra07177b
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