Redox Oxides-Based Solar Thermochemistry and Its Materialization to Reactor/Heat Exchanger Concepts for Efficient Solar Energy Harvesting, Transformation and Storage

Author:

Agrafiotis Christos1,Pein Mathias23,Giasafaki Dimitra4,Tescari Stefania1,Roeb Martin5,Sattler Christian1

Affiliation:

1. Deutsches Zentrum für Luft- und Raumfahrt/ German Aerospace Center—DLR, Institute of Solar Research, Linder Höhe, Cologne 51147, Germany e-mail:

2. Deutsches Zentrum für Luft- und Raumfahrt/ German Aerospace Center—DLR, Institute of Solar Research, Linder Höhe, Cologne 51147, Germany;

3. Faculty of Mechanical Science and Engineering, Institute of Power Engineering, TU Dresden, Dresden 01062, Germany e-mail:

4. National Centre for Scientific Research “Demokritos,” Institute of Nanoscience and Nanotechnology, Aghia Paraskevi, Attica 15341, Greece e-mail:

5. Deutsches Zentrum für Luft- und Raumfahrt/ German Aerospace Center—DLR, Institute of Solar Research, Linder Höhe, Cologne 51147, Germany e-mail:

Abstract

Ca-Mn-based perovskites doped in their A- and B-site were synthesized and comparatively tested versus the Co3O4/CoO and (Mn,Fe)2O3/(Mn,Fe)3O4 redox pairs with respect to thermochemical storage and oxygen pumping capability, as a function of the kind and extent of dopant. The perovskites' induced heat effects measured via differential scanning calorimetry are substantially lower: the highest reaction enthalpy recorded by the CaMnO3–δ composition was only 14.84 kJ/kg compared to 461.1 kJ/kg for Co3O4/CoO and 161.0 kJ/kg for (Mn,Fe)2O3/(Mn,Fe)3O4. Doping of Ca with increasing content of Sr decreased these heat effects; more than 20 at % Sr eventually eliminated them. Perovskites with Sr instead of Ca in the A-site exhibited also negligible heat effects, irrespective of the kind of B site cation. On the contrary, perovskite compositions characterized by high oxygen release/uptake can operate as thermochemical oxygen pumps enhancing the performance of water/carbon dioxide splitting materials. Oxygen pumping via Ca0.9Sr0.1MnO3–δ and SrFeO3–δ doubled and tripled, respectively, the total oxygen absorbed by ceria during its re-oxidation versus that absorbed without their presence. Such effective pumping compositions exhibited practically no shrinkage during one heat-up/cool-down cycle. However, they demonstrated an increase of the coefficient of linear expansion due to the superposition of “chemical expansion” to thermal-only one, the effect of which on the long-term dimensional stability has to be further quantified through extended cyclic operation.

Publisher

ASME International

Subject

Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment

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