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Alternative and facile production pathway towards obtaining high surface area PtCo/C intermetallic catalysts for improved PEM fuel cell performance

The design of catalysts with stable and finely dispersed platinum or platinum alloy nanoparticles on the carbon support is key in controlling the performance of proton exchange membrane (PEM) fuel cells. In the present work, an intermetallic PtCo/C catalyst is synthesized via double-passivation galv...

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Autores principales: Heizmann, Philipp A., Nguyen, Hien, von Holst, Miriam, Fischbach, Andreas, Kostelec, Mitja, Gonzalez Lopez, Francisco Javier, Bele, Marjan, Pavko, Luka, Đukić, Tina, Šala, Martin, Ruiz-Zepeda, Francisco, Klose, Carolin, Gatalo, Matija, Hodnik, Nejc, Vierrath, Severin, Breitwieser, Matthias
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9900476/
https://www.ncbi.nlm.nih.gov/pubmed/36760270
http://dx.doi.org/10.1039/d2ra07780a
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author Heizmann, Philipp A.
Nguyen, Hien
von Holst, Miriam
Fischbach, Andreas
Kostelec, Mitja
Gonzalez Lopez, Francisco Javier
Bele, Marjan
Pavko, Luka
Đukić, Tina
Šala, Martin
Ruiz-Zepeda, Francisco
Klose, Carolin
Gatalo, Matija
Hodnik, Nejc
Vierrath, Severin
Breitwieser, Matthias
author_facet Heizmann, Philipp A.
Nguyen, Hien
von Holst, Miriam
Fischbach, Andreas
Kostelec, Mitja
Gonzalez Lopez, Francisco Javier
Bele, Marjan
Pavko, Luka
Đukić, Tina
Šala, Martin
Ruiz-Zepeda, Francisco
Klose, Carolin
Gatalo, Matija
Hodnik, Nejc
Vierrath, Severin
Breitwieser, Matthias
author_sort Heizmann, Philipp A.
collection PubMed
description The design of catalysts with stable and finely dispersed platinum or platinum alloy nanoparticles on the carbon support is key in controlling the performance of proton exchange membrane (PEM) fuel cells. In the present work, an intermetallic PtCo/C catalyst is synthesized via double-passivation galvanic displacement. TEM and XRD confirm a significantly narrowed particle size distribution for the catalyst particles compared to commercial benchmark catalysts (Umicore PtCo/C). Only about 10% of the mass fraction of PtCo particles show a diameter larger than 8 nm, whereas this is up to or even more than 35% for the reference systems. This directly results in a considerable increase in electrochemically active surface area (96 m(2) g(−1)vs. >70 m(2) g(−1)), which confirms the more efficient usage of precious catalyst metal in the novel catalyst. Single-cell tests validate this finding by improved PEM fuel cell performance. Reducing the cathode catalyst loading from 0.4 mg cm(−2) to 0.25 mg cm(−2) resulted in a power density drop at an application-relevant 0.7 V of only 4% for the novel catalyst, compared to the 10% and 20% for the commercial benchmarks reference catalysts.
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spelling pubmed-99004762023-02-08 Alternative and facile production pathway towards obtaining high surface area PtCo/C intermetallic catalysts for improved PEM fuel cell performance Heizmann, Philipp A. Nguyen, Hien von Holst, Miriam Fischbach, Andreas Kostelec, Mitja Gonzalez Lopez, Francisco Javier Bele, Marjan Pavko, Luka Đukić, Tina Šala, Martin Ruiz-Zepeda, Francisco Klose, Carolin Gatalo, Matija Hodnik, Nejc Vierrath, Severin Breitwieser, Matthias RSC Adv Chemistry The design of catalysts with stable and finely dispersed platinum or platinum alloy nanoparticles on the carbon support is key in controlling the performance of proton exchange membrane (PEM) fuel cells. In the present work, an intermetallic PtCo/C catalyst is synthesized via double-passivation galvanic displacement. TEM and XRD confirm a significantly narrowed particle size distribution for the catalyst particles compared to commercial benchmark catalysts (Umicore PtCo/C). Only about 10% of the mass fraction of PtCo particles show a diameter larger than 8 nm, whereas this is up to or even more than 35% for the reference systems. This directly results in a considerable increase in electrochemically active surface area (96 m(2) g(−1)vs. >70 m(2) g(−1)), which confirms the more efficient usage of precious catalyst metal in the novel catalyst. Single-cell tests validate this finding by improved PEM fuel cell performance. Reducing the cathode catalyst loading from 0.4 mg cm(−2) to 0.25 mg cm(−2) resulted in a power density drop at an application-relevant 0.7 V of only 4% for the novel catalyst, compared to the 10% and 20% for the commercial benchmarks reference catalysts. The Royal Society of Chemistry 2023-02-06 /pmc/articles/PMC9900476/ /pubmed/36760270 http://dx.doi.org/10.1039/d2ra07780a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Heizmann, Philipp A.
Nguyen, Hien
von Holst, Miriam
Fischbach, Andreas
Kostelec, Mitja
Gonzalez Lopez, Francisco Javier
Bele, Marjan
Pavko, Luka
Đukić, Tina
Šala, Martin
Ruiz-Zepeda, Francisco
Klose, Carolin
Gatalo, Matija
Hodnik, Nejc
Vierrath, Severin
Breitwieser, Matthias
Alternative and facile production pathway towards obtaining high surface area PtCo/C intermetallic catalysts for improved PEM fuel cell performance
title Alternative and facile production pathway towards obtaining high surface area PtCo/C intermetallic catalysts for improved PEM fuel cell performance
title_full Alternative and facile production pathway towards obtaining high surface area PtCo/C intermetallic catalysts for improved PEM fuel cell performance
title_fullStr Alternative and facile production pathway towards obtaining high surface area PtCo/C intermetallic catalysts for improved PEM fuel cell performance
title_full_unstemmed Alternative and facile production pathway towards obtaining high surface area PtCo/C intermetallic catalysts for improved PEM fuel cell performance
title_short Alternative and facile production pathway towards obtaining high surface area PtCo/C intermetallic catalysts for improved PEM fuel cell performance
title_sort alternative and facile production pathway towards obtaining high surface area ptco/c intermetallic catalysts for improved pem fuel cell performance
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9900476/
https://www.ncbi.nlm.nih.gov/pubmed/36760270
http://dx.doi.org/10.1039/d2ra07780a
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