Low nickel, ceria zirconia-based micro-tubular solid oxide fuel cell: A study of composition and oxidation using hydrogen and methane fuel

The study examines the effect of using low nickel (Ni) with high ceria (CeO2) anode content towards the oxidation of H2 and CH4 fuel by evaluating the activation energy of the ohmic process and charge transfer process. Using a micro-tubular solid oxide fuel cell (MT-SOFC), the anodes are made up of...

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Published in:Sustainability (Switzerland)
Main Author: Shabri H.A.; Rudin S.N.F.M.; Deraman S.; Rahman M.A.; Othman M.H.D.; Jamil S.M.; Kurniawan T.A.; Li T.; Bakar S.A.; Osman N.; Jaafar J.; Rahman M.A.; Ismail A.F.
Format: Article
Language:English
Published: MDPI 2021
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85121276592&doi=10.3390%2fsu132413789&partnerID=40&md5=18b8bc1c97e366deda241e1aee11b1c0
id 2-s2.0-85121276592
spelling 2-s2.0-85121276592
Shabri H.A.; Rudin S.N.F.M.; Deraman S.; Rahman M.A.; Othman M.H.D.; Jamil S.M.; Kurniawan T.A.; Li T.; Bakar S.A.; Osman N.; Jaafar J.; Rahman M.A.; Ismail A.F.
Low nickel, ceria zirconia-based micro-tubular solid oxide fuel cell: A study of composition and oxidation using hydrogen and methane fuel
2021
Sustainability (Switzerland)
13
24
10.3390/su132413789
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85121276592&doi=10.3390%2fsu132413789&partnerID=40&md5=18b8bc1c97e366deda241e1aee11b1c0
The study examines the effect of using low nickel (Ni) with high ceria (CeO2) anode content towards the oxidation of H2 and CH4 fuel by evaluating the activation energy of the ohmic process and charge transfer process. Using a micro-tubular solid oxide fuel cell (MT-SOFC), the anodes are made up of 50% YSZ with varying NiO:CeO2 percentages from 0% NiO, 50% CeO2 to 50% NiO, 0% CeO2. The performance is measured based on maximum power density (MPD), electrochemical impedance spectroscopy (EIS) and activation energy, Ea of the ohmic (Rohm) and charge transfer (Rct) processes. We found that by lowering the Ni content to lower than 50% NiO, anode conductivity will drop by 7-fold. An anode containing 37.5% NiO, 12.5% CeO2 yield MPD of 41.1 and 2.9 mW cm−2 when tested on H2 and CH4 fuels thus have the lowest Ni content without an abrupt negative effect on the MPD and EIS. The significant effect of conductivity drops on MPD and EIS are observed to occur at 25% NiO, 25% CeO2 and lower NiO content. However, anode content of 25% NiO, 25% CeO2 has the lowest Ea for Rct (29.74 kJ mol−1) for operation in CH4, making it the best anode composition to oxidize CH4. As a conclusion, an anode containing 25% NiO:25% CeO2:50% YSZ and 37.5% NiO:12.5% CeO2:50% YSZ shows promising results in becoming the low Ni anode for coking-tolerant SOFC. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.
MDPI
20711050
English
Article
All Open Access; Gold Open Access
author Shabri H.A.; Rudin S.N.F.M.; Deraman S.; Rahman M.A.; Othman M.H.D.; Jamil S.M.; Kurniawan T.A.; Li T.; Bakar S.A.; Osman N.; Jaafar J.; Rahman M.A.; Ismail A.F.
spellingShingle Shabri H.A.; Rudin S.N.F.M.; Deraman S.; Rahman M.A.; Othman M.H.D.; Jamil S.M.; Kurniawan T.A.; Li T.; Bakar S.A.; Osman N.; Jaafar J.; Rahman M.A.; Ismail A.F.
Low nickel, ceria zirconia-based micro-tubular solid oxide fuel cell: A study of composition and oxidation using hydrogen and methane fuel
author_facet Shabri H.A.; Rudin S.N.F.M.; Deraman S.; Rahman M.A.; Othman M.H.D.; Jamil S.M.; Kurniawan T.A.; Li T.; Bakar S.A.; Osman N.; Jaafar J.; Rahman M.A.; Ismail A.F.
author_sort Shabri H.A.; Rudin S.N.F.M.; Deraman S.; Rahman M.A.; Othman M.H.D.; Jamil S.M.; Kurniawan T.A.; Li T.; Bakar S.A.; Osman N.; Jaafar J.; Rahman M.A.; Ismail A.F.
title Low nickel, ceria zirconia-based micro-tubular solid oxide fuel cell: A study of composition and oxidation using hydrogen and methane fuel
title_short Low nickel, ceria zirconia-based micro-tubular solid oxide fuel cell: A study of composition and oxidation using hydrogen and methane fuel
title_full Low nickel, ceria zirconia-based micro-tubular solid oxide fuel cell: A study of composition and oxidation using hydrogen and methane fuel
title_fullStr Low nickel, ceria zirconia-based micro-tubular solid oxide fuel cell: A study of composition and oxidation using hydrogen and methane fuel
title_full_unstemmed Low nickel, ceria zirconia-based micro-tubular solid oxide fuel cell: A study of composition and oxidation using hydrogen and methane fuel
title_sort Low nickel, ceria zirconia-based micro-tubular solid oxide fuel cell: A study of composition and oxidation using hydrogen and methane fuel
publishDate 2021
container_title Sustainability (Switzerland)
container_volume 13
container_issue 24
doi_str_mv 10.3390/su132413789
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85121276592&doi=10.3390%2fsu132413789&partnerID=40&md5=18b8bc1c97e366deda241e1aee11b1c0
description The study examines the effect of using low nickel (Ni) with high ceria (CeO2) anode content towards the oxidation of H2 and CH4 fuel by evaluating the activation energy of the ohmic process and charge transfer process. Using a micro-tubular solid oxide fuel cell (MT-SOFC), the anodes are made up of 50% YSZ with varying NiO:CeO2 percentages from 0% NiO, 50% CeO2 to 50% NiO, 0% CeO2. The performance is measured based on maximum power density (MPD), electrochemical impedance spectroscopy (EIS) and activation energy, Ea of the ohmic (Rohm) and charge transfer (Rct) processes. We found that by lowering the Ni content to lower than 50% NiO, anode conductivity will drop by 7-fold. An anode containing 37.5% NiO, 12.5% CeO2 yield MPD of 41.1 and 2.9 mW cm−2 when tested on H2 and CH4 fuels thus have the lowest Ni content without an abrupt negative effect on the MPD and EIS. The significant effect of conductivity drops on MPD and EIS are observed to occur at 25% NiO, 25% CeO2 and lower NiO content. However, anode content of 25% NiO, 25% CeO2 has the lowest Ea for Rct (29.74 kJ mol−1) for operation in CH4, making it the best anode composition to oxidize CH4. As a conclusion, an anode containing 25% NiO:25% CeO2:50% YSZ and 37.5% NiO:12.5% CeO2:50% YSZ shows promising results in becoming the low Ni anode for coking-tolerant SOFC. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.
publisher MDPI
issn 20711050
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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