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An anode catalyst support for polymer electrolyte membrane fuel cells: application of organically modified titanium and silicon dioxide

This work describes an attempt to improve the physical and electrochemical parameters of PEM fuel cells that have electrodes modified by titanium and silicon dioxides. A customized design of membrane electrode assemblies was proposed which is characterized to have an around 6 times higher concentrat...

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Autores principales: Malinowski, Marek, Iwan, Agnieszka, Hreniak, Agnieszka, Tazbir, Igor
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/PMC9069572/
https://www.ncbi.nlm.nih.gov/pubmed/35527872
http://dx.doi.org/10.1039/c9ra04862f
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author Malinowski, Marek
Iwan, Agnieszka
Hreniak, Agnieszka
Tazbir, Igor
author_facet Malinowski, Marek
Iwan, Agnieszka
Hreniak, Agnieszka
Tazbir, Igor
author_sort Malinowski, Marek
collection PubMed
description This work describes an attempt to improve the physical and electrochemical parameters of PEM fuel cells that have electrodes modified by titanium and silicon dioxides. A customized design of membrane electrode assemblies was proposed which is characterized to have an around 6 times higher concentration of catalyst at the cathode side (2.0 mgPt cm(−2)) in order to investigate the influence of anode catalyst support treatment. Anode catalyst support materials were modified using pristine TiO(2) and TiO(2)–SiO(2)–VTMS – the composite was crosslinked with the aid of vinyltrimethoxysilane. Surface area and porosity analysis was carried out with the aid of BET, BJH, t-plot and Horvath–Kawazoe (H–K) theories for particular components of the support materials and their catalyst mixtures. The experiment revealed a positive influence of TiO(2)–SiO(2)–VTMS (BET 321.9 m(2) g(−1), BJH 3.7 nm) on the anode catalyst layer in terms of surface area (3-times increase, 75 m(2) g(−1)) and average pore size (decrease from 25.3 to 15.7 nm). Additionally, favourable microporosity (pores less than 2 nm) was introduced to the material according to the H–K analysis results (10.3 m(2) g(−1), 0.65 nm). Electrochemical experiments, which include polarization curves, electrochemical impedance spectroscopy and cyclic voltammetry, have demonstrated the change of behaviour for the fabricated fuel cells with modified anodes against the reference sample. The mitigation of charge and mass transfer resistance (by 15–20%, 50 mV at 200 mA cm(−2)), the improvement of power density (up to 72%, 217 mW cm(−2)) and a better exposure of the catalyst to the reactants of an electrochemical reaction were observed for fuel cells modified by both pristine TiO(2) and the hybrid TiO(2)–SiO(2)–VTMS-based compound.
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spelling pubmed-90695722022-05-05 An anode catalyst support for polymer electrolyte membrane fuel cells: application of organically modified titanium and silicon dioxide Malinowski, Marek Iwan, Agnieszka Hreniak, Agnieszka Tazbir, Igor RSC Adv Chemistry This work describes an attempt to improve the physical and electrochemical parameters of PEM fuel cells that have electrodes modified by titanium and silicon dioxides. A customized design of membrane electrode assemblies was proposed which is characterized to have an around 6 times higher concentration of catalyst at the cathode side (2.0 mgPt cm(−2)) in order to investigate the influence of anode catalyst support treatment. Anode catalyst support materials were modified using pristine TiO(2) and TiO(2)–SiO(2)–VTMS – the composite was crosslinked with the aid of vinyltrimethoxysilane. Surface area and porosity analysis was carried out with the aid of BET, BJH, t-plot and Horvath–Kawazoe (H–K) theories for particular components of the support materials and their catalyst mixtures. The experiment revealed a positive influence of TiO(2)–SiO(2)–VTMS (BET 321.9 m(2) g(−1), BJH 3.7 nm) on the anode catalyst layer in terms of surface area (3-times increase, 75 m(2) g(−1)) and average pore size (decrease from 25.3 to 15.7 nm). Additionally, favourable microporosity (pores less than 2 nm) was introduced to the material according to the H–K analysis results (10.3 m(2) g(−1), 0.65 nm). Electrochemical experiments, which include polarization curves, electrochemical impedance spectroscopy and cyclic voltammetry, have demonstrated the change of behaviour for the fabricated fuel cells with modified anodes against the reference sample. The mitigation of charge and mass transfer resistance (by 15–20%, 50 mV at 200 mA cm(−2)), the improvement of power density (up to 72%, 217 mW cm(−2)) and a better exposure of the catalyst to the reactants of an electrochemical reaction were observed for fuel cells modified by both pristine TiO(2) and the hybrid TiO(2)–SiO(2)–VTMS-based compound. The Royal Society of Chemistry 2019-08-07 /pmc/articles/PMC9069572/ /pubmed/35527872 http://dx.doi.org/10.1039/c9ra04862f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Malinowski, Marek
Iwan, Agnieszka
Hreniak, Agnieszka
Tazbir, Igor
An anode catalyst support for polymer electrolyte membrane fuel cells: application of organically modified titanium and silicon dioxide
title An anode catalyst support for polymer electrolyte membrane fuel cells: application of organically modified titanium and silicon dioxide
title_full An anode catalyst support for polymer electrolyte membrane fuel cells: application of organically modified titanium and silicon dioxide
title_fullStr An anode catalyst support for polymer electrolyte membrane fuel cells: application of organically modified titanium and silicon dioxide
title_full_unstemmed An anode catalyst support for polymer electrolyte membrane fuel cells: application of organically modified titanium and silicon dioxide
title_short An anode catalyst support for polymer electrolyte membrane fuel cells: application of organically modified titanium and silicon dioxide
title_sort anode catalyst support for polymer electrolyte membrane fuel cells: application of organically modified titanium and silicon dioxide
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9069572/
https://www.ncbi.nlm.nih.gov/pubmed/35527872
http://dx.doi.org/10.1039/c9ra04862f
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