V. Cascos
Spanish National Research Council
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Featured researches published by V. Cascos.
Materials | 2016
V. Cascos; J. A. Alonso; M. T. Fernández-Díaz
SrMo1−xMxO3−δ (M = Fe and Cr, x = 0.1 and 0.2) oxides have been recently described as excellent anode materials for solid oxide fuel cells at intermediate temperatures (IT-SOFC) with LSGM as the electrolyte. In this work, we have improved their properties by doping with aliovalent Mg ions at the B-site of the parent SrMoO3 perovskite. SrMo1−xMgxO3−δ (x = 0.1, 0.2) oxides have been prepared, characterized and tested as anode materials in single solid-oxide fuel cells, yielding output powers near 900 mW/cm−2 at 850 °C using pure H2 as fuel. We have studied its crystal structure with an “in situ” neutron power diffraction (NPD) experiment at temperatures as high as 800 °C, emulating the working conditions of an SOFC. Adequately high oxygen deficiencies, observed by NPD, together with elevated disk-shaped anisotropic displacement factors suggest a high ionic conductivity at the working temperatures. Furthermore, thermal expansion measurements, chemical compatibility with the LSGM electrolyte, electronic conductivity and reversibility upon cycling in oxidizing-reducing atmospheres have been carried out to find out the correlation between the excellent performance as an anode and the structural features.
Materials | 2016
V. Cascos; J. A. Alonso; M. T. Fernández-Díaz
SrCoO3−δ outperforms as cathode material in solid-oxide fuel cells (SOFC) when the three-dimensional (3C-type) perovskite structure is stabilized by the inclusion of highly-charged transition-metal ions at the octahedral positions. In a previous work we studied the Nb incorporation at the Co positions in the SrCo1−xNbxO3−δ system, in which the stabilization of a tetragonal P4/mmm perovskite superstructure was described for the x = 0.05 composition. In the present study we extend this investigation to the x = 0.10–0.15 range, also observing the formation of the tetragonal P4/mmm structure instead of the unwanted hexagonal phase corresponding to the 2H polytype. We also investigated the effect of Nb5+ doping on the thermal, electrical, and electrochemical properties of SrCo1−xNbxO3−δ (x = 0.1 and 0.15) perovskite oxides performing as cathodes in SOFC. In comparison with the undoped hexagonal SrCoO3−δ phase, the resulting compounds present high thermal stability and an increase of the electrical conductivity. The single-cell tests for these compositions (x = 0.10 and 0.15) with La0.8Sr0.2Ga0.83Mg0.17O3−δ (LSGM) as electrolyte and SrMo0.8Fe0.2CoO3−δ as anode gave maximum power densities of 693 and 550 mW∙cm−2 at 850 °C respectively, using pure H2 as fuel and air as oxidant.
International Journal of Hydrogen Energy | 2014
V. Cascos; R. Martínez-Coronado; J. A. Alonso
International Journal of Hydrogen Energy | 2015
V. Cascos; L. Troncoso; J. A. Alonso
Journal of Power Sources | 2014
R. Martínez-Coronado; J. A. Alonso; V. Cascos; M. T. Fernández-Díaz
International Journal of Hydrogen Energy | 2015
V. Cascos; R. Martínez-Coronado; J. A. Alonso; M.T. Fernández-Díaz
Renewable Energy | 2017
V. Cascos; L. Troncoso; J. A. Alonso; M.T. Fernández-Díaz
Renewable Energy | 2019
V. Cascos; M.T. Fernández-Díaz; J. A. Alonso
International Journal of Hydrogen Energy | 2018
Consuelo Alvarez-Galvan; Horacio Falcón; V. Cascos; L. Troncoso; Susana Perez-Ferreras; M.C. Capel-Sanchez; J.M. Campos-Martin; J. A. Alonso; José Luis G. Fierro
ACS Applied Energy Materials | 2018
V. Cascos; L. Troncoso; M. T. Fernández-Diaz; J. A. Alonso