Densification and Proton Conductivity of La1-xBaxScO3-δ Electrolyte Membranes
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[1] S. Mikhalev,et al. Tailoring the properties of dense yttrium‐doped barium zirconate ceramics with nickel oxide additives by manipulation of the sintering profile , 2022, International Journal of Energy Research.
[2] S. Mikhalev,et al. Towards improved chemical stability of yttrium‐doped barium cerate by the introduction of nickel oxide , 2022, Journal of the American Ceramic Society.
[3] A. Raskovalov,et al. Correlating Proton Diffusion in Perovskite Triple-Conducting Oxides with Local and Defect Structure , 2022, Chemistry of Materials.
[4] G. Sakai,et al. Optimum dopant of barium zirconate electrolyte for manufacturing of protonic ceramic fuel cells , 2021 .
[5] Neal Fairley,et al. Systematic and collaborative approach to problem solving using X-ray photoelectron spectroscopy , 2021 .
[6] D. Medvedev. Current drawbacks of proton-conducting ceramic materials: how to overcome them for real electrochemical purposes , 2021, Current Opinion in Green and Sustainable Chemistry.
[7] J. Santiso,et al. The effect of Ni and Fe on the decomposition of yttrium doped barium zirconate thin films , 2021 .
[8] B. Kale,et al. Exploring the impact of sintering additives on the densification and conductivity of BaCe0.3Zr0.55Y0.15O3-δ electrolyte for protonic ceramic fuel cells , 2021 .
[9] T. Sakai,et al. Determination of Oxide Ion Conductivity in Ba-Doped LaYbO3 Proton-Conducting Perovskites via an Oxygen Isotope Exchange Method , 2021 .
[10] Donglin Han,et al. Proton Conductive BaZr0.8-xCexY0.2O3-δ: Influence of NiO Sintering Additive on Crystal Structure, Hydration Behavior, and Conduction Properties. , 2020, ChemSusChem.
[11] A. Kuzmin,et al. Proton conductivity and mobility in Sr-doped LaScO3 perovskites , 2020 .
[12] Jiang Liu,et al. Multiple Effects of Iron and Nickel Additives on the Properties of Proton Conducting Yttrium-Doped Barium Cerate-Zirconate Electrolytes for High-Performance Solid Oxide Fuel Cells. , 2020, ACS applied materials & interfaces.
[13] J. Maier,et al. X-ray Spectroscopy of (Ba,Sr,La)(Fe,Zn,Y)O3−δ Identifies Structural and Electronic Features Favoring Proton Uptake , 2020, Chemistry of Materials.
[14] D. Osinkin,et al. LaScO3-based electrolyte for protonic ceramic fuel cells: Influence of sintering additives on the transport properties and electrochemical performance , 2020 .
[15] J. Maier,et al. Effect of NiO addition on proton uptake of BaZr1-xYxO3-x/2 and BaZr1-xScxO3-x/2 electrolytes , 2020 .
[16] N. Sullivan,et al. Proton-conducting oxides for energy conversion and storage , 2020 .
[17] Stacy Gates-Rector,et al. The Powder Diffraction File: a quality materials characterization database , 2019, Powder Diffraction.
[18] D. P. Fagg,et al. A review on sintering technology of proton conducting BaCeO3-BaZrO3 perovskite oxide materials for Protonic Ceramic Fuel Cells , 2019, Journal of Power Sources.
[19] M. Ananyev,et al. Interaction of O2, H2O and H2 with proton-conducting oxides based on lanthanum scandates , 2019, International Journal of Hydrogen Energy.
[20] M. Ananyev,et al. Water Uptake and Transport Properties of La1−xCaxScO3−α Proton-Conducting Oxides , 2019, Materials.
[21] A. O. Rudenko,et al. Manipulating the grain boundary properties of BaCeO3-based ceramic materials through sintering additives introduction , 2019, Chimica Techno Acta.
[22] A. Kuzmin,et al. Synthesis and characterization of dense proton-conducting La1-xSrxScO3-α ceramics , 2019, International Journal of Hydrogen Energy.
[23] M. Ananyev,et al. Oxygen isotope exchange in proton-conducting oxides based on lanthanum scandates , 2018, International Journal of Hydrogen Energy.
[24] Alan A. Coelho,et al. TOPAS and TOPAS-Academic: an optimization program integrating computer algebra and crystallographic objects written in C++ , 2018 .
[25] A. Kuzmin,et al. Local disorder and water uptake in La 1–x Sr x ScO 3–δ , 2017 .
[26] S. Maikap,et al. Negative voltage modulated multi-level resistive switching by using a Cr/BaTiOx/TiN structure and quantum conductance through evidence of H2O2 sensing mechanism , 2017, Scientific Reports.
[27] G. C. Mather,et al. Effect of sintering conditions on the electrical-transport properties of the SrZrO 3 -based protonic ceramic electrolyser membrane , 2016 .
[28] I. Animitsa,et al. Recent activity in the development of proton-conducting oxides for high-temperature applications , 2016 .
[29] G. Sakai,et al. Proton-conducting oxide with redox protonation and its application to a hydrogen sensor with a self-standard electrode , 2016 .
[30] F. Alema,et al. Dielectric Properties of BaMg1/3Nb2/3O3 doped Ba0.45Sr0.55TiO3 Thin Films for Tunable Microwave Applications , 2015 .
[31] A. Demin,et al. Formation of dense electrolytes based on BaCeO3 and BaZrO3 for application in solid oxide fuel cells: The role of solid-state reactive sintering , 2015, Review Journal of Chemistry.
[32] S. Haile,et al. Effect of NiO sintering-aid on hydration kinetics and defect-chemical parameters of BaZr0.8Y0.2O3 - Δ , 2015 .
[33] S. Bishop,et al. Understanding chemical expansion in perovskite-structured oxides. , 2015, Physical chemistry chemical physics : PCCP.
[34] N. Sullivan,et al. Effects of the fabrication process on the grain-boundary resistance in BaZr0.9Y0.1O3−δ , 2014 .
[35] M. Matsuka,et al. Incorporation and conduction of proton in Sr-doped LaMO3 (M=Al, Sc, In, Yb, Y) , 2014 .
[36] Takaaki Sakai,et al. Electrochemical hydrogen pumps using Ba doped LaYbO3 type proton conducting electrolyte , 2013 .
[37] M. Matsuka,et al. Proton transport properties of La0.9M0.1YbO3−δ (M = Ba, Sr, Ca, Mg) , 2013 .
[38] V. Gorelov,et al. Solid proton conducting electrolytes based on LaScO3 , 2012, Russian Journal of Electrochemistry.
[39] G. Pantaleo,et al. Nature of cobalt active species in hydrodesulfurization catalysts: Combined support and preparation method effects , 2007 .
[40] K. Knight,et al. Structural studies of the proton conducting perovskite ‘La0.6Ba0.4ScO2.8’ , 2007 .
[41] T. Omata,et al. Hydration behavior of Ba2Sc2O5 with an oxygen-deficient perovskite structure , 2006 .
[42] H. Matsumoto,et al. Influence of the transition-metal doping on conductivity of a BaCeO3-based protonic conductor , 2005 .
[43] Hong-lim Lee,et al. Phase Formation and Electrical Conductivity of Ba-Doped LaScO3 , 2005 .
[44] Y. Miyazaki,et al. Proton conduction in doped LaScO3 perovskites , 2004 .
[45] Yamato Asakura,et al. Prospect of hydrogen technology using proton-conducting ceramics , 2004 .
[46] H. Yugami,et al. Electrical conductivity of Al-doped La1−xSrxScO3 perovskite-type oxides as electrolyte materials for low-temperature SOFC , 2003 .
[47] Y. Miyazaki,et al. Proton conduction in (La0.9Sr0.1)MIIIO3−δ (MIII=Sc, In, and Lu) perovskites , 2002 .
[48] V. Parmon,et al. Metal-support interactions in cobalt-aluminum co-precipitated catalysts: XPS and CO adsorption studies , 2001 .
[49] Xin Guo,et al. Grain Boundary Blocking Effect in Zirconia: A Schottky Barrier Analysis , 2001 .
[50] M. Mogensen,et al. Conductivity of A- and B-site doped LaAlO3, LaGaO3, LaScO3 and LaInO3 perovskites , 2000 .
[51] H. Iwahara,et al. Protonic Conduction in Perovskite-type Oxide Ceramics Based on LnScO3 (Ln=La, Nd, Sm or Gd) at High Temperature , 1998 .
[52] Hyun-Deok Baek. Modeling of electrical conductivity in high-temperature proton-conducting oxides , 1998 .
[53] K. Knight,et al. Perovskite solid electrolytes: Structure, transport properties and fuel cell applications , 1995 .
[54] J. Frade. Theoretical behaviour of concentration cells based on ABO3 perovskite materials with protonic and oxygen ion conduction , 1995 .
[55] Takashi Hibino,et al. Protonic conduction in calcium, strontium and barium zirconates , 1993 .
[56] H. Iwahara,et al. Proton Conduction in Sintered Oxides Based on BaCeO3 , 1988 .
[57] H. Iwahara,et al. Proton conduction in sintered oxides and its application to steam electrolysis for hydrogen production , 1981 .
[58] R. D. Shannon. Revised effective ionic radii and systematic studies of interatomic distances in halides and chalcogenides , 1976 .
[59] J. Maier,et al. Effects of NiO addition on sintering and proton uptake of Ba(Zr,Ce,Y)O3−δ , 2021, Journal of Materials Chemistry A.
[60] A. Demin,et al. Densification, morphological and transport properties of functional La1–xBaxYbO3– ceramic materials , 2020 .
[61] Donglin Han,et al. Electrochemical and structural influence on BaZr 0.8 Y 0.2 O 3‐δ from manganese, cobalt, and iron oxide additives , 2019, Journal of the American Ceramic Society.
[62] C. Biesingera,et al. esolving surface chemical states in XPS analysis of first row transition metals , xides and hydroxides : Cr , Mn , Fe , 2010 .
[63] J. H. Scofield,et al. Hartree-Slater subshell photoionization cross-sections at 1254 and 1487 eV , 1976 .
[64] M. Biesinger,et al. Resolving surface chemical states in XPS analysis of first row transition metals, oxides and hydroxides: Cr, Mn, Fe, Co and Ni , 2022 .