Concentration-Dependent Solar Thermochemical CO2/H2O Splitting Performance by Vanadia–Ceria Multiphase Metal Oxide Systems
The effects of V and Ce concentrations (each varying in the 0–100% range) in vanadia–ceria multiphase systems are investigated for synthesis gas production via thermochemical redox cycles of CO2 and H2O splitting coupled to methane partial oxidation reactions. The oxidation of prepared oxygen carrie...
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doaj-21e16a9150484c879e61313f1d7cf6892020-11-25T01:19:32ZengAmerican Association for the Advancement of ScienceResearch2639-52742020-01-01202010.34133/2020/3049534Concentration-Dependent Solar Thermochemical CO2/H2O Splitting Performance by Vanadia–Ceria Multiphase Metal Oxide SystemsAsim Riaz0Muhammad Umair Ali1T. Gabriel Enge2Takuya Tsuzuki3Adrian Lowe4Wojciech Lipiński5Research School of Electrical,Energy and Materials Engineering,The Australian National University,Canberra ACT 2601,AustraliaDepartment of Materials Science and Engineering,College of Engineering,Peking University,Beijing 100871,ChinaResearch School of Earth Sciences,The Australian National University,Canberra ACT 2601,AustraliaResearch School of Electrical,Energy and Materials Engineering,The Australian National University,Canberra ACT 2601,AustraliaResearch School of Electrical,Energy and Materials Engineering,The Australian National University,Canberra ACT 2601,AustraliaResearch School of Electrical,Energy and Materials Engineering,The Australian National University,Canberra ACT 2601,AustraliaThe effects of V and Ce concentrations (each varying in the 0–100% range) in vanadia–ceria multiphase systems are investigated for synthesis gas production via thermochemical redox cycles of CO2 and H2O splitting coupled to methane partial oxidation reactions. The oxidation of prepared oxygen carriers is performed by separate and sequential CO2 and H2O splitting reactions. Structural and chemical analyses of the mixed-metal oxides revealed important information about the Ce and V interactions affecting their crystal phases and redox characteristics. Pure CeO2 and pure V2O5 are found to offer the lowest and highest oxygen exchange capacities and syngas production performance, respectively. The mixed-oxide systems provide a balanced performance: their oxygen exchange capacity is up to 5 times higher than that of pure CeO2 while decreasing the extent of methane cracking. The addition of 25% V to CeO2 results in an optimum mixture of CeO2 and CeVO4 for enhanced CO2 and H2O splitting. At higher V concentrations, cyclic carbide formation and oxidation result in a syngas yield higher than that for pure CeO2.http://dx.doi.org/10.34133/2020/3049534 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Asim Riaz Muhammad Umair Ali T. Gabriel Enge Takuya Tsuzuki Adrian Lowe Wojciech Lipiński |
spellingShingle |
Asim Riaz Muhammad Umair Ali T. Gabriel Enge Takuya Tsuzuki Adrian Lowe Wojciech Lipiński Concentration-Dependent Solar Thermochemical CO2/H2O Splitting Performance by Vanadia–Ceria Multiphase Metal Oxide Systems Research |
author_facet |
Asim Riaz Muhammad Umair Ali T. Gabriel Enge Takuya Tsuzuki Adrian Lowe Wojciech Lipiński |
author_sort |
Asim Riaz |
title |
Concentration-Dependent Solar Thermochemical CO2/H2O Splitting Performance by Vanadia–Ceria Multiphase Metal Oxide Systems |
title_short |
Concentration-Dependent Solar Thermochemical CO2/H2O Splitting Performance by Vanadia–Ceria Multiphase Metal Oxide Systems |
title_full |
Concentration-Dependent Solar Thermochemical CO2/H2O Splitting Performance by Vanadia–Ceria Multiphase Metal Oxide Systems |
title_fullStr |
Concentration-Dependent Solar Thermochemical CO2/H2O Splitting Performance by Vanadia–Ceria Multiphase Metal Oxide Systems |
title_full_unstemmed |
Concentration-Dependent Solar Thermochemical CO2/H2O Splitting Performance by Vanadia–Ceria Multiphase Metal Oxide Systems |
title_sort |
concentration-dependent solar thermochemical co2/h2o splitting performance by vanadia–ceria multiphase metal oxide systems |
publisher |
American Association for the Advancement of Science |
series |
Research |
issn |
2639-5274 |
publishDate |
2020-01-01 |
description |
The effects of V and Ce concentrations (each varying in the 0–100% range) in vanadia–ceria multiphase systems are investigated for synthesis gas production via thermochemical redox cycles of CO2 and H2O splitting coupled to methane partial oxidation reactions. The oxidation of prepared oxygen carriers is performed by separate and sequential CO2 and H2O splitting reactions. Structural and chemical analyses of the mixed-metal oxides revealed important information about the Ce and V interactions affecting their crystal phases and redox characteristics. Pure CeO2 and pure V2O5 are found to offer the lowest and highest oxygen exchange capacities and syngas production performance, respectively. The mixed-oxide systems provide a balanced performance: their oxygen exchange capacity is up to 5 times higher than that of pure CeO2 while decreasing the extent of methane cracking. The addition of 25% V to CeO2 results in an optimum mixture of CeO2 and CeVO4 for enhanced CO2 and H2O splitting. At higher V concentrations, cyclic carbide formation and oxidation result in a syngas yield higher than that for pure CeO2. |
url |
http://dx.doi.org/10.34133/2020/3049534 |
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