Physically mixed LiLaNi-Al2O3 and copper as conductive anode catalysts in a solid oxide fuel cell for methane internal reforming and partial oxidation

Different concentrations of copper are added to LiLaNi-Al2O 3 to improve the electronic conductivity property for application as the materials of the anode catalyst layer for solid oxide fuel cells operating on methane. Their catalytic activity for the methane partial oxidation, steam and CO2 reform...

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Main Authors: Wang, W., Su, C., Ran, R., Park, H., Kwak, C., Shao, Zongping
Format: Journal Article
Published: 2011
Online Access:http://hdl.handle.net/20.500.11937/34782
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author Wang, W.
Su, C.
Ran, R.
Park, H.
Kwak, C.
Shao, Zongping
author_facet Wang, W.
Su, C.
Ran, R.
Park, H.
Kwak, C.
Shao, Zongping
author_sort Wang, W.
building Curtin Institutional Repository
collection Online Access
description Different concentrations of copper are added to LiLaNi-Al2O 3 to improve the electronic conductivity property for application as the materials of the anode catalyst layer for solid oxide fuel cells operating on methane. Their catalytic activity for the methane partial oxidation, steam and CO2 reforming reactions at 600-850 °C is systematically investigated. Among the three catalysts, the LiLaNi-Al2O 3/Cu (50:50, by weight) catalyst presents the best catalytic activity. Thus, the catalytic stability, carbon deposition and surface conductivity of the LiLaNi-Al2O3/Cu catalyst are further studied in detail. O2-TPO results indicate that the coking resistance of LiLaNi-Al2O3/Cu is satisfactory and comparable to that of LiLaNi-Al2O3. The surface conductivity tests demonstrate it is extremely improved for LiLaNi-Al2O3 catalyst due to the addition of 50 wt.% copper. A cell with LiLaNi-Al 2O3/Cu (50:50) catalyst layer is operated on mixtures of methane-O2, methane-H2O and methane-CO2, and peak power densities of 1081, 1036 and 988 mW cm-2 are obtained at 850 °C, respectively, comparable to the cell with LiLaNi-Al 2O3 catalyst layer. In summary, the results of the present study indicate that LiLaNi-Al2O3/Cu (50:50) catalysts are highly coking resistant and conductive catalyst layers for solid oxide fuel cells. © 2011, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
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spelling curtin-20.500.11937-347822017-09-13T15:23:29Z Physically mixed LiLaNi-Al2O3 and copper as conductive anode catalysts in a solid oxide fuel cell for methane internal reforming and partial oxidation Wang, W. Su, C. Ran, R. Park, H. Kwak, C. Shao, Zongping Different concentrations of copper are added to LiLaNi-Al2O 3 to improve the electronic conductivity property for application as the materials of the anode catalyst layer for solid oxide fuel cells operating on methane. Their catalytic activity for the methane partial oxidation, steam and CO2 reforming reactions at 600-850 °C is systematically investigated. Among the three catalysts, the LiLaNi-Al2O 3/Cu (50:50, by weight) catalyst presents the best catalytic activity. Thus, the catalytic stability, carbon deposition and surface conductivity of the LiLaNi-Al2O3/Cu catalyst are further studied in detail. O2-TPO results indicate that the coking resistance of LiLaNi-Al2O3/Cu is satisfactory and comparable to that of LiLaNi-Al2O3. The surface conductivity tests demonstrate it is extremely improved for LiLaNi-Al2O3 catalyst due to the addition of 50 wt.% copper. A cell with LiLaNi-Al 2O3/Cu (50:50) catalyst layer is operated on mixtures of methane-O2, methane-H2O and methane-CO2, and peak power densities of 1081, 1036 and 988 mW cm-2 are obtained at 850 °C, respectively, comparable to the cell with LiLaNi-Al 2O3 catalyst layer. In summary, the results of the present study indicate that LiLaNi-Al2O3/Cu (50:50) catalysts are highly coking resistant and conductive catalyst layers for solid oxide fuel cells. © 2011, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved. 2011 Journal Article http://hdl.handle.net/20.500.11937/34782 10.1016/j.ijhydene.2011.01.163 restricted
spellingShingle Wang, W.
Su, C.
Ran, R.
Park, H.
Kwak, C.
Shao, Zongping
Physically mixed LiLaNi-Al2O3 and copper as conductive anode catalysts in a solid oxide fuel cell for methane internal reforming and partial oxidation
title Physically mixed LiLaNi-Al2O3 and copper as conductive anode catalysts in a solid oxide fuel cell for methane internal reforming and partial oxidation
title_full Physically mixed LiLaNi-Al2O3 and copper as conductive anode catalysts in a solid oxide fuel cell for methane internal reforming and partial oxidation
title_fullStr Physically mixed LiLaNi-Al2O3 and copper as conductive anode catalysts in a solid oxide fuel cell for methane internal reforming and partial oxidation
title_full_unstemmed Physically mixed LiLaNi-Al2O3 and copper as conductive anode catalysts in a solid oxide fuel cell for methane internal reforming and partial oxidation
title_short Physically mixed LiLaNi-Al2O3 and copper as conductive anode catalysts in a solid oxide fuel cell for methane internal reforming and partial oxidation
title_sort physically mixed lilani-al2o3 and copper as conductive anode catalysts in a solid oxide fuel cell for methane internal reforming and partial oxidation
url http://hdl.handle.net/20.500.11937/34782