Establishing reactivity descriptors for platinum group metal (PGM)-free Fe–N–C catalysts for PEM fuel cells
Mathias J.M. Primbs,Yanyan Sun,Aaron Roy,Daniel Malko,Asad Mehmood,Moulay Tahar Sougrati,Pierre-Yves Blanchard,Gaetano Granozzi,Tomasz Kosmala,Giorgia Daniel,Plamen Atanassov,Jonathan Sharman,Christian Durante,Anthony Kucernak,Deborah J. Jones,Frédéric Jaouen,Peter Strasser +16 more
TL;DR: In this article, the authors report a comprehensive analysis of the catalytic oxygen reduction reaction (ORR) reactivity of four of today's most active benchmark platinum group metal-free (PGM-free) iron/nitrogen doped carbon electrocatalysts (Fe-N-Cs) in PEMFC.
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Abstract: We report a comprehensive analysis of the catalytic oxygen reduction reaction (ORR) reactivity of four of today's most active benchmark platinum group metal-free (PGM-free) iron/nitrogen doped carbon electrocatalysts (Fe-N-Cs) Our analysis reaches far beyond previous such attempts in linking kinetic performance metrics, such as electrocatalytic mass-based and surface area-based catalytic activity with previously elusive kinetic metrics such as the active metal site density (SD) and the catalytic turnover frequency (TOF) Kinetic ORR activities, SD and TOF values were evaluated using in situ electrochemical NO 2 A reduction as well as an ex situ gaseous CO cryo chemisorption Experimental ex situ and in situ Fe surface site densities displayed remarkable quantitative congruence Plots of SD versus TOF (''reactivity maps'') are utilized as new analytical tools to deconvolute ORR reactivities and thus enabling rational catalyst developments A microporous catalyst showed large SD values paired with low TOF, while mesoporous catalysts displayed the opposite Trends in Fe surface site density were linked to molecular nitrogen and Fe moieties (D1 and D2 from 57 Fe Mossbauer spectroscopy), from which pore locations of catalytically active D1 and D2 sites were established This cross-laboratory analysis, its employed experimental practices and analytical methodologies are expected to serve as a widely accepted reference for future, knowledge-based research into improved PGM-free fuel cell cathode catalysts Broader context Polymer electrolyte membrane fuel cells (PEMFC) have reached the commercial stage and ever wider deployment is imminent To further reduce the loading of platinum group metal (PGM) catalysts in PEMFC electrodes, PGM-free, iron and nitrogen-doped carbon oxygen reduction (ORR) electrocatalysts (Fe-N-C) were developed over past decades Recent advances in activity and stability of Fe-N-C are impressive, yet methods to evaluate the number of catalytic active Fe sites at the surface and intrinsic turn over frequency remained elusive This changed with the advent of CO cryo-sorption and in situ nitrite stripping techniques that yielded these intrinsic reactivity descriptors Never before, however, have these two complementary specific adsorption/stripping techniques been compared and combined with other chemical and spectroscopic analytics for an in-depth analysis of catalytic reactivity of Fe-N-C ORR electrocatalysts The present study addresses this issue and presents a comprehensive analysis of the reactivity of the four state-of-the-art Fe-N-C PEMFC electrocatalysts The study provides a deeper understanding of the origin and difference in catalytic performance through the combination of a host of different surface sensitive and bulk analysis methods The methodologies and analyses of this benchmark catalyst study will benefit future developments in Fe-N-C catalysis
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Citations
Modulation of Mo–Fe–C Sites Over Mesoscale Diffusion‐Enhanced Hollow Sub‐Micro Reactors Toward Boosted Electrochemical Water Oxidation
TL;DR: In this article , the mesoscale diffusion and Mo-Fe-C sites formation over monodispersed hollow Fe@MoS2-C sub-micro reactors for boosted oxygen evolution reaction (OER) performance were investigated.
Sulfur Doping versus Hierarchical Pore Structure: The Dominating Effect on the Fe-N-C Site Density, Activity, and Selectivity in Oxygen Reduction Reaction Electrocatalysis.
Giorgia Daniel,Marco Mazzucato,Riccardo Brandiele,Laura De Lazzari,Denis Badocco,Paolo Pastore,Tomasz Kosmala,Gaetano Granozzi,Christian Durante +8 more
TL;DR: In this article, the effect of sulfur doping of carbon support on the Fe-Nx site formation and on the textural properties (micro- and mesopore surface area and volume) was investigated in detail.
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Understanding how single-atom site density drives the performance and durability of PGM-free Fe–N–C cathodes in anion exchange membrane fuel cells
Horie Adabi,Pietro Giovanni Santori,Abolfazl Shakouri,Xiong Peng,Karam Yassin,Igal G. Rasin,Simon Brandon,Dario R. Dekel,Noor Ul Hassan,Moulay Tahar Sougrati,Andrea Zitolo,John R. Varcoe,John R. Regalbuto,Frédéric Jaouen,William E. Mustain +14 more
- 01 Dec 2021
TL;DR: In this paper, two types of Fe-N-C are prepared from the same precursor and procedure, the main difference is how the precursor was handled prior to use, and there were drastic differences in the catalyst structure, activity, and especially in their performance in an operating anion exchange membrane fuel cell (AEMFC).
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Study of the evolution of FeNxCy and Fe3C species in Fe/N/C catalysts during the oxygen reduction reaction in acid and alkaline electrolyte
Álvaro López García,Laura Pascual,Pilar Ferrer,Diego Gianolio,Georg Held,David C. Grinter,Miguel A. Peña,Maria Retuerto,Sergio Rojas +8 more
TL;DR: In this paper, the nature and evolution of FeNxCy moieties in Fe/C/N catalysts has been studied by analysing Fe and N environments, and the correlation between the evolution of the ORR activity and that of the Fe nxCy ensembles indicates that Fe nix-pyridinic ensemble are responsible for the ORr activity.
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ZIF-8-derived Fe-C catalysts: relationship between structure and catalytic activity toward the oxygen reduction reaction
Jakub P. Masnica,Syed Sibt-e-Hassan,Sanja Potgieter-Vermaak,Yagya N. Regmi,Laurie A. King,Lubomira Tosheva +5 more
- 01 Nov 2023
TL;DR: Fe-doped carbonized ZIF-8 catalysts exhibit higher oxygen reduction reaction activity than pure CZ, particularly in basic electrolyte, with performance influenced by Fe precursor selection and resulting differences in crystallinity, morphology, and Fe-Nx active site density.
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