Hydrogen production by water splitting with Mn3-xCoxO4 mixed oxides thermochemical cycles: A thermodynamic analysis. (15th July 2020)
- Record Type:
- Journal Article
- Title:
- Hydrogen production by water splitting with Mn3-xCoxO4 mixed oxides thermochemical cycles: A thermodynamic analysis. (15th July 2020)
- Main Title:
- Hydrogen production by water splitting with Mn3-xCoxO4 mixed oxides thermochemical cycles: A thermodynamic analysis
- Authors:
- Orfila, María
Linares, María
Molina, Raúl
Marugán, Javier
Botas, Juan Ángel
Sanz, Raúl - Abstract:
- Highlights: H2 production by thermochemical water splitting with Mn3-x Cox O4 materials is proposed. Mn2.1 Co0.9 O4 presented higher efficiency for H2 production than pure metal oxides. Mn2.1 Co0.9 O4 exhibited an operational temperature lower than pure Mn2 O3 cycle. The exergy efficiency was higher than those reported for Mn, Fe and Ce oxides cycles. Abstract: The high temperature required for hydrogen production by solar driven thermochemical cycles is a critical factor hindering full-scale applications. The thermochemical cycle based on Mn3 O4 /MnO redox pair is one of the most studied despite the high operating temperature required for complete de reduction step (1623–1723 K). The combination of Mn3 O4 with Co3 O4, a metal oxide with lower reduction temperature than Mn3 O4 that cannot be used for hydrogen production due to thermodynamic limitations, is presented as a way to decrease significantly the energy demand of the cycle. In this work, a complete thermodynamic study of thermochemical cycles with different Mn/Co mixed oxides (Mn3-x Cox O4, 0.9 < x < 2.7) for hydrogen production has been performed. The study of the variation of Gibbs energy with temperature allowed to determine that the thermal reduction of the metal oxide (Mn3-x Cox O4 ) takes place at temperatures between 1048 and 1173 K, which can be achieved by conventional solar concentration technologies. Unfortunately, the oxidation of the reduced metal oxide (Mn3- xCox O3 ) with water to produce H2 is notHighlights: H2 production by thermochemical water splitting with Mn3-x Cox O4 materials is proposed. Mn2.1 Co0.9 O4 presented higher efficiency for H2 production than pure metal oxides. Mn2.1 Co0.9 O4 exhibited an operational temperature lower than pure Mn2 O3 cycle. The exergy efficiency was higher than those reported for Mn, Fe and Ce oxides cycles. Abstract: The high temperature required for hydrogen production by solar driven thermochemical cycles is a critical factor hindering full-scale applications. The thermochemical cycle based on Mn3 O4 /MnO redox pair is one of the most studied despite the high operating temperature required for complete de reduction step (1623–1723 K). The combination of Mn3 O4 with Co3 O4, a metal oxide with lower reduction temperature than Mn3 O4 that cannot be used for hydrogen production due to thermodynamic limitations, is presented as a way to decrease significantly the energy demand of the cycle. In this work, a complete thermodynamic study of thermochemical cycles with different Mn/Co mixed oxides (Mn3-x Cox O4, 0.9 < x < 2.7) for hydrogen production has been performed. The study of the variation of Gibbs energy with temperature allowed to determine that the thermal reduction of the metal oxide (Mn3-x Cox O4 ) takes place at temperatures between 1048 and 1173 K, which can be achieved by conventional solar concentration technologies. Unfortunately, the oxidation of the reduced metal oxide (Mn3- xCox O3 ) with water to produce H2 is not feasible from a thermodynamically point of view, so a stronger oxidizing agent, as sodium hydroxide, is required. The optimum temperature for the oxidation with NaOH was found to be 1373 K, meaning that this reaction takes place at higher temperatures than those actually required for the reduction, something uncommon in thermochemical cycles for water splitting. On the other hand, after the study of the variables affecting the equilibrium like the inert gas/solid ratio, it can be concluded that in both reactions, thermal requirements can be reduced by operating at lower temperatures by means of a higher inert gas/Mn3-x Cox O4 ratio. Finally, energy and exergy analysis of the system based on the solar absorption efficiency and the energy requirements predicts a solar-to-fuel efficiency and exergy efficiency of 40% and 23%, respectively. These values are comparable or even higher than those found in literature for other metal oxides thermochemical cycles for water splitting, thus with the advantage of working at a considerable lower temperature (1373 K). … (more)
- Is Part Of:
- Energy conversion and management. Volume 216(2020)
- Journal:
- Energy conversion and management
- Issue:
- Volume 216(2020)
- Issue Display:
- Volume 216, Issue 2020 (2020)
- Year:
- 2020
- Volume:
- 216
- Issue:
- 2020
- Issue Sort Value:
- 2020-0216-2020-0000
- Page Start:
- Page End:
- Publication Date:
- 2020-07-15
- Subjects:
- Hydrogen production -- Thermochemical water splitting -- Manganese cobalt mixed oxides -- Thermodynamic analysis -- Energy and exergy efficiency
Direct energy conversion -- Periodicals
Energy storage -- Periodicals
Energy transfer -- Periodicals
Énergie -- Conversion directe -- Périodiques
Direct energy conversion
Periodicals
621.3105 - Journal URLs:
- http://www.sciencedirect.com/science/journal/01968904 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.enconman.2020.112945 ↗
- Languages:
- English
- ISSNs:
- 0196-8904
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 3747.547000
British Library DSC - BLDSS-3PM
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