A NiFeCu alloy anode catalyst for direct-methane solid oxide fuel cells

In this study, a new anode catalyst based on a NiFeCu alloy is investigated for use in direct-methane solid oxide fuel cells (SOFCs). The influence of the conductive copper introduced into the anode catalyst layer on the performance of the SOFCs is systematically studied. The catalytic activity for...

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Main Authors: Wang, W., Zhu, H., Yang, G., Park, H., Jung, D., Kwak, C., Shao, Zongping
Format: Journal Article
Published: 2014
Online Access:http://hdl.handle.net/20.500.11937/36867
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author Wang, W.
Zhu, H.
Yang, G.
Park, H.
Jung, D.
Kwak, C.
Shao, Zongping
author_facet Wang, W.
Zhu, H.
Yang, G.
Park, H.
Jung, D.
Kwak, C.
Shao, Zongping
author_sort Wang, W.
building Curtin Institutional Repository
collection Online Access
description In this study, a new anode catalyst based on a NiFeCu alloy is investigated for use in direct-methane solid oxide fuel cells (SOFCs). The influence of the conductive copper introduced into the anode catalyst layer on the performance of the SOFCs is systematically studied. The catalytic activity for partial oxidation of methane and coking resistance tests are proposed with various anode catalyst layer materials prepared using different methods, including glycine nitrate process (GNP), physical mixing (PM) and impregnation (IMP). The surface conductivity tests indicate that the conductivities of the NiFe-ZrO 2/Cu (PM) and NiFe-ZrO2/Cu (IMP) catalysts are considerably greater than that of NiFe-ZrO2/Cu (GNP), which is consistent with the SEM results. Among the three preparation methods, the cell containing the NiFe-ZrO2/Cu (IMP) catalyst layer performs best on CH4-O2 fuel, especially under reduced temperatures, because the coking resistance should be considered in real fuel cell conditions. The cell containing the NiFe-ZrO2/Cu (IMP) catalyst layer also delivers an excellent operational stability using CH4-O2 fuel for 100 h without any signs of decay. In summary, this work provides new alternative anode catalytic materials to accelerate the commercialization of SOFC technology. © 2014 Elsevier B.V. All rights reserved.
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spelling curtin-20.500.11937-368672017-09-13T15:19:08Z A NiFeCu alloy anode catalyst for direct-methane solid oxide fuel cells Wang, W. Zhu, H. Yang, G. Park, H. Jung, D. Kwak, C. Shao, Zongping In this study, a new anode catalyst based on a NiFeCu alloy is investigated for use in direct-methane solid oxide fuel cells (SOFCs). The influence of the conductive copper introduced into the anode catalyst layer on the performance of the SOFCs is systematically studied. The catalytic activity for partial oxidation of methane and coking resistance tests are proposed with various anode catalyst layer materials prepared using different methods, including glycine nitrate process (GNP), physical mixing (PM) and impregnation (IMP). The surface conductivity tests indicate that the conductivities of the NiFe-ZrO 2/Cu (PM) and NiFe-ZrO2/Cu (IMP) catalysts are considerably greater than that of NiFe-ZrO2/Cu (GNP), which is consistent with the SEM results. Among the three preparation methods, the cell containing the NiFe-ZrO2/Cu (IMP) catalyst layer performs best on CH4-O2 fuel, especially under reduced temperatures, because the coking resistance should be considered in real fuel cell conditions. The cell containing the NiFe-ZrO2/Cu (IMP) catalyst layer also delivers an excellent operational stability using CH4-O2 fuel for 100 h without any signs of decay. In summary, this work provides new alternative anode catalytic materials to accelerate the commercialization of SOFC technology. © 2014 Elsevier B.V. All rights reserved. 2014 Journal Article http://hdl.handle.net/20.500.11937/36867 10.1016/j.jpowsour.2014.02.008 restricted
spellingShingle Wang, W.
Zhu, H.
Yang, G.
Park, H.
Jung, D.
Kwak, C.
Shao, Zongping
A NiFeCu alloy anode catalyst for direct-methane solid oxide fuel cells
title A NiFeCu alloy anode catalyst for direct-methane solid oxide fuel cells
title_full A NiFeCu alloy anode catalyst for direct-methane solid oxide fuel cells
title_fullStr A NiFeCu alloy anode catalyst for direct-methane solid oxide fuel cells
title_full_unstemmed A NiFeCu alloy anode catalyst for direct-methane solid oxide fuel cells
title_short A NiFeCu alloy anode catalyst for direct-methane solid oxide fuel cells
title_sort nifecu alloy anode catalyst for direct-methane solid oxide fuel cells
url http://hdl.handle.net/20.500.11937/36867