Functional properties of La0.99X0.01Nb0.99Al0.01O4−δ and La0.99X0.01Nb0.99Ti0.01O4−δ proton conductors where X is an alkaline earth cation
暂无分享,去创建一个
J. M. Serra | O. Guillon | J. Mayer | D. Sebold | W. Meulenberg | M. Ivanova | C. Solís | J. Palisaitis | M. Hänsel | M. Ziegner
[1] O. Guillon,et al. Phase homogeneity analysis of La0.99Sr0.01Nb0.99Al0.01O4−δ and La0.99Ca0.01Nb0.99Ti0.01O4−δ proton conductors by high-resolution STEM and EELS , 2015 .
[2] W. Kriven,et al. High‐Temperature Properties and Ferroelastic Phase Transitions in Rare‐Earth Niobates (LnNbO4) , 2014 .
[3] L. Jian,et al. Effect of Ce and Yb co-doping on conductivity of LaNbO4 , 2014 .
[4] J. M. Serra,et al. Synthesis and characterization of nonsubstituted and substituted proton-conducting La(6-x)WO(12-y). , 2013, Inorganic chemistry.
[5] F. Tietz,et al. Degradation phenomena in a solid oxide electrolysis cell after 9000 h of operation , 2013 .
[6] T. Norby,et al. Effects of A and B site acceptor doping on hydration and proton mobility of LaNbO4 , 2012 .
[7] N. Bonanos,et al. Conductivity study of dense BaZr0.9Y0.1O(3-d) obtained by spark plasma sintering , 2012 .
[8] W. Meulenberg,et al. Effects of A- and B-site (co-)acceptor doping on the structure and proton conductivity of LaNbO4 , 2012 .
[9] W. Sigle,et al. Dopant Segregation and Space Charge Effects in Proton-Conducting BaZrO3 Perovskites , 2012 .
[10] J. M. Serra,et al. Adjusting the conduction properties of La0.995Ca0.005NbO4 − δ by doping for proton conducting fuel cells electrode operation , 2011 .
[11] G. C. Mather,et al. B-site substitutions in LaNb1−xMxO4−δ materials in the search for potential proton conductors (M=Ga, Ge, Si, B, Ti, Zr, P, Al) , 2011 .
[12] C. Fisher,et al. Defects, Dopants, and Protons in LaNbO4 , 2010 .
[13] Doris Sebold,et al. Potentialities of microporous membranes for H2/CO2 separation in future fossil fuel power plants: Evaluation of SiO2, ZrO2, Y2O3–ZrO2 and TiO2–ZrO2 sol–gel membranes , 2010 .
[14] K. Toyoura,et al. Proton mobility through a second order phase transition: theoretical and experimental study of LaNbO4. , 2010, Physical chemistry chemical physics : PCCP.
[15] M. Gazda,et al. Structure and electrical properties of ceramic proton conductors obtained with molten-salt and solid-state synthesis methods , 2010 .
[16] T. Norby,et al. Charge carriers in grain boundaries of 0.5% Sr-doped LaNbO4 , 2010 .
[17] T. Grande,et al. Thermal and mechanical properties of LaNbO4-based ceramics , 2009 .
[18] I. Kaus,et al. High-Temperature Proton-Conducting Lanthanum Ortho-Niobate-Based Materials. Part II. Sintering Properties and Solubility of Alkaline Earth Oxides , 2008 .
[19] W. Coors. Protonic ceramic steam-permeable membranes , 2007 .
[20] T. Norby,et al. High-temperature proton conductivity in acceptor-doped LaNbO4 , 2006 .
[21] T. Norby,et al. Proton conduction in rare-earth ortho-niobates and ortho-tantalates , 2006 .
[22] E. Barsoukov,et al. Impedance spectroscopy : theory, experiment, and applications , 2005 .
[23] R. Waser,et al. Space charge concept for acceptor-doped zirconia and ceria and experimental evidences , 2004 .
[24] K. Kreuer. First published online as a Review in Advance on April 9, 2003 PROTON-CONDUCTING OXIDES , 2022 .
[25] Xin Guo,et al. Separation of Electronic and Ionic Contributions to the Grain Boundary Conductivity in Acceptor-Doped SrTiO3 , 2001 .
[26] Michael Stoukides,et al. Solid-Electrolyte Membrane Reactors: Current Experience and Future Outlook , 2000 .
[27] K. Kreuer. Aspects of the formation and mobility of protonic charge carriers and the stability of perovskite-type oxides , 1999 .
[28] T. Takagi,et al. Fabrication and Mechanical Properties of LaNbO4 and LaNbO4/Al2O3 Composites , 1998 .
[29] C. M. Wayman,et al. Monoclinic‐to‐Tetragonal Phase Transformation in a Ceramic Rare‐Earth Orthoniobate, LaNbO4 , 1997 .
[30] K. Kreuer. Proton Conductivity: Materials and Applications , 1996 .
[31] I-Wei Chen,et al. Grain Size Control of Tetragonal Zirconia Polycrystals Using the Space Charge Concept , 1990 .
[32] J. Hutchinson,et al. Microcracking in Ceramics Induced by Thermal Expansion or Elastic Anisotropy , 1988 .
[33] W. David. The high-temperature paraelastic structure of LaNbO4 , 1983 .
[34] V. Stubican. High‐Temperature Transitions in Rare‐Earth Niobates and TantaIates , 1964 .
[35] J. M. Serra,et al. State of the art of ceramic membranes for hydrogen separation , 2010 .
[36] T. Ishihara. Oxide Ion Conductivity in Perovskite Oxide for SOFC Electrolyte , 2009 .
[37] T. Norby. Proton Conductivity in Perovskite Oxides , 2009 .
[38] S. Tosti,et al. Synthesis, characterization, and applications of palladium membranes , 2008 .
[39] M. Menéndez,et al. Inorganic Membranes : Synthesis, Characterization and Applications , 2008 .
[40] Xin Guo,et al. Grain Boundary Space Charge Effect in Zirconia Experimental Evidence , 2004 .
[41] Ø. Prytz. Phase separation, transformation and domain formation in LaNbO4 supersaturated with Sr : A TEM study , 2003 .
[42] Elton N. Kaufmann,et al. Characterization of materials , 2003 .
[43] Xin Guo,et al. Blocking Grain Boundaries in Yttria‐Doped and Undoped Ceria Ceramics of High Purity , 2003 .
[44] S. Haile,et al. Non-stoichiometry, grain boundary transport and chemical stability of proton conducting perovskites , 2001 .
[45] Joachim Maier,et al. Ionic conduction in space charge regions , 1995 .
[46] K. Gingerich,et al. Relation Between Ionic Radii and Transformation Temperature in Rare Earth Niobates , 1963 .