Electrochemical conversion of methane measured by anode out gas monitoring over Ce–Co–Cu anode electrocatalysts

Solid oxide fuel cells (SOFCs) enable the highly efficient conversion of fuels to electricity, offering notable fuel flexibility. However, conventional nickel-based SOFC anode materials currently available on the market are unable to effectively utilise low-carbon fuels without succumbing to carbon...

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Main Authors: Bernardo Jordão Moreira Sarruf, Robert Steinberger-Wilckens, Paulo Emílio Valadão de Miranda
Format: Article
Language:English
Published: IOP Publishing 2025-01-01
Series:JPhys Energy
Subjects:
Online Access:https://doi.org/10.1088/2515-7655/adae33
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author Bernardo Jordão Moreira Sarruf
Robert Steinberger-Wilckens
Paulo Emílio Valadão de Miranda
author_facet Bernardo Jordão Moreira Sarruf
Robert Steinberger-Wilckens
Paulo Emílio Valadão de Miranda
author_sort Bernardo Jordão Moreira Sarruf
collection DOAJ
description Solid oxide fuel cells (SOFCs) enable the highly efficient conversion of fuels to electricity, offering notable fuel flexibility. However, conventional nickel-based SOFC anode materials currently available on the market are unable to effectively utilise low-carbon fuels without succumbing to carbon deposition, which degrades the anode rapidly. This study introduces a nickel-free SOFC anode electrocatalyst capable of achieving impressive power densities exceeding 400 mW cm ^−2 at 850 °C when operating directly with pure methane. Comparative analysis of three cell types, each with varying amounts of ceria, cobalt, and copper in their anode compositions, was conducted. Gas chromatography was employed to monitor anode effluent gases under electrochemical conditions, complemented by electrochemical impedance assessments using hydrogen as the fuel to identify polarisation sources within these innovative anode configurations. The findings reveal that tracking chemical and electrochemical reactions in SOFCs provides insights into efficiency and fuel conversion mechanisms, wherein the anode material transforms fuel into useful products while generating electricity and heat. Notably, copper additions influence these behaviours, although Cobalt-rich catalysts exhibit superior performance in facilitating fuel conversion through combined electrochemical and thermochemical reactions. Distribution of relaxation times analysis highlights the necessity of optimising microstructure and mitigating gas diffusion polarisation effects, corroborating the validity of equivalent circuit models aligned with electrochemical impedance spectroscopy data.
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issn 2515-7655
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publishDate 2025-01-01
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series JPhys Energy
spelling doaj-art-e4991c90fd7f4fcfaaf474052e51a28e2025-02-06T11:41:41ZengIOP PublishingJPhys Energy2515-76552025-01-017202500810.1088/2515-7655/adae33Electrochemical conversion of methane measured by anode out gas monitoring over Ce–Co–Cu anode electrocatalystsBernardo Jordão Moreira Sarruf0https://orcid.org/0000-0002-4842-545XRobert Steinberger-Wilckens1Paulo Emílio Valadão de Miranda2School of Chemical Engineering, University of Birmingham , Edgbaston, Birmingham B15 2TT, United KingdomSchool of Chemical Engineering, University of Birmingham , Edgbaston, Birmingham B15 2TT, United KingdomMetallurgical and Materials Engineering Department, Federal University of Rio de Janeiro , Rio de Janeiro, RJ, 21942-971, BrazilSolid oxide fuel cells (SOFCs) enable the highly efficient conversion of fuels to electricity, offering notable fuel flexibility. However, conventional nickel-based SOFC anode materials currently available on the market are unable to effectively utilise low-carbon fuels without succumbing to carbon deposition, which degrades the anode rapidly. This study introduces a nickel-free SOFC anode electrocatalyst capable of achieving impressive power densities exceeding 400 mW cm ^−2 at 850 °C when operating directly with pure methane. Comparative analysis of three cell types, each with varying amounts of ceria, cobalt, and copper in their anode compositions, was conducted. Gas chromatography was employed to monitor anode effluent gases under electrochemical conditions, complemented by electrochemical impedance assessments using hydrogen as the fuel to identify polarisation sources within these innovative anode configurations. The findings reveal that tracking chemical and electrochemical reactions in SOFCs provides insights into efficiency and fuel conversion mechanisms, wherein the anode material transforms fuel into useful products while generating electricity and heat. Notably, copper additions influence these behaviours, although Cobalt-rich catalysts exhibit superior performance in facilitating fuel conversion through combined electrochemical and thermochemical reactions. Distribution of relaxation times analysis highlights the necessity of optimising microstructure and mitigating gas diffusion polarisation effects, corroborating the validity of equivalent circuit models aligned with electrochemical impedance spectroscopy data.https://doi.org/10.1088/2515-7655/adae33nickel-free anodessolid oxide cellsmethanebiogasnatural gas
spellingShingle Bernardo Jordão Moreira Sarruf
Robert Steinberger-Wilckens
Paulo Emílio Valadão de Miranda
Electrochemical conversion of methane measured by anode out gas monitoring over Ce–Co–Cu anode electrocatalysts
JPhys Energy
nickel-free anodes
solid oxide cells
methane
biogas
natural gas
title Electrochemical conversion of methane measured by anode out gas monitoring over Ce–Co–Cu anode electrocatalysts
title_full Electrochemical conversion of methane measured by anode out gas monitoring over Ce–Co–Cu anode electrocatalysts
title_fullStr Electrochemical conversion of methane measured by anode out gas monitoring over Ce–Co–Cu anode electrocatalysts
title_full_unstemmed Electrochemical conversion of methane measured by anode out gas monitoring over Ce–Co–Cu anode electrocatalysts
title_short Electrochemical conversion of methane measured by anode out gas monitoring over Ce–Co–Cu anode electrocatalysts
title_sort electrochemical conversion of methane measured by anode out gas monitoring over ce co cu anode electrocatalysts
topic nickel-free anodes
solid oxide cells
methane
biogas
natural gas
url https://doi.org/10.1088/2515-7655/adae33
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AT pauloemiliovaladaodemiranda electrochemicalconversionofmethanemeasuredbyanodeoutgasmonitoringovercecocuanodeelectrocatalysts