[go: up one dir, main page]
More Web Proxy on the site http://driver.im/

Shih et al., 2018 - Google Patents

Improvement of ionic conductivity in A-site lithium doped sodium bismuth titanate

Shih et al., 2018

Document ID
15891130319982393326
Author
Shih D
Aguadero A
Skinner S
Publication year
Publication venue
Solid State Ionics

External Links

Snippet

Oxide-ion conductors play a significant role in various applications such as solid oxide fuel cells (SOFCs), oxygen separation membranes and sensors. Recently, high ionic conductivity (~ 1× 10− 4 S cm− 1 at 600° C) was found in sodium bismuth titanate (NBT), which …
Continue reading at www.sciencedirect.com (other versions)

Classifications

    • CCHEMISTRY; METALLURGY
    • C04CEMENTS; CONCRETE; ARTIFICIAL STONE; CERAMICS; REFRACTORIES
    • C04BLIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
    • C04B2235/00Aspects relating to ceramic starting mixtures or sintered ceramic products
    • C04B2235/02Composition of constituents of the starting material or of secondary phases of the final product
    • C04B2235/30Constituents and secondary phases not being of a fibrous nature
    • C04B2235/32Metal oxides, mixed metal oxides, or oxide-forming salts thereof, e.g. carbonates, nitrates, (oxy)hydroxides, chlorides
    • C04B2235/3231Refractory metal oxides, their mixed metal oxides, or oxide-forming salts thereof
    • HELECTRICITY
    • H01BASIC ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL INTO ELECTRICAL ENERGY
    • H01M8/00Fuel cells; Manufacture thereof
    • H01M8/10Fuel cells with solid electrolytes
    • H01M8/12Fuel cells with solid electrolytes operating at high temperature, e.g. with stabilised ZrO2 electrolyte
    • H01M8/124Fuel cells with solid electrolytes operating at high temperature, e.g. with stabilised ZrO2 electrolyte characterised by the process of manufacturing or by the material of the electrolyte
    • H01M8/1246Fuel cells with solid electrolytes operating at high temperature, e.g. with stabilised ZrO2 electrolyte characterised by the process of manufacturing or by the material of the electrolyte the electrolyte consisting of oxides
    • HELECTRICITY
    • H01BASIC ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL INTO ELECTRICAL ENERGY
    • H01M8/00Fuel cells; Manufacture thereof
    • H01M8/10Fuel cells with solid electrolytes
    • H01M8/12Fuel cells with solid electrolytes operating at high temperature, e.g. with stabilised ZrO2 electrolyte
    • H01M2008/1293Fuel cells with solid oxide electrolytes

Similar Documents

Publication Publication Date Title
Yang et al. Enhanced bulk conductivity of A-site divalent acceptor-doped non-stoichiometric sodium bismuth titanate
Kuharuangrong Ionic conductivity of Sm, Gd, Dy and Er-doped ceria
Shih et al. Improvement of ionic conductivity in A-site lithium doped sodium bismuth titanate
Bhattacharyya et al. High ionic conductivity of Mg2+-doped non-stoichiometric sodium bismuth titanate
Wolfenstine et al. Electrical conductivity and charge compensation in Ta doped Li4Ti5O12
Omar et al. A co-doping approach towards enhanced ionic conductivity in fluorite-based electrolytes
Babilo et al. Enhanced sintering of yttrium‐doped barium zirconate by addition of ZnO
Bowman et al. Electrical conductivity and grain boundary composition of Gd-doped and Gd/Pr co-doped ceria
Díaz-Guillén et al. The effect of homovalent A-site substitutions on the ionic conductivity of pyrochlore-type Gd2Zr2O7
Díaz-Guillén et al. High ionic conductivity in the pyrochlore-type Gd2− yLayZr2O7 solid solution (0≤ y≤ 1)
Li et al. Stable and easily sintered BaCe0. 5Zr0. 3Y0. 2O3− δ electrolytes using ZnO and Na2CO3 additives for protonic oxide fuel cells
Ortiz‐Vitoriano et al. The formation of performance enhancing pseudo‐composites in the highly active La1–xCaxFe0. 8Ni0. 2O3 system for IT‐SOFC application
Ling et al. New ionic diffusion strategy to fabricate proton-conducting solid oxide fuel cells based on a stable La2Ce2O7 electrolyte
Guan et al. Densification behavior and space charge blocking effect of Bi2O3 and Gd2O3 co-doped CeO2 as electrolyte for solid oxide fuel cells
Bhattacharyya et al. Electrical conductivity study of B-site Ga doped non-stoichiometric sodium bismuth titanate ceramics
Bohnke et al. Ionic and electronic conductivity of 3 mol% Fe2O3-substituted cubic yttria-stabilized ZrO2 (YSZ) and scandia-stabilized ZrO2 (ScSZ)
Kant et al. Synthesis and characterization of bismuth vanadate electrolyte material with aluminium doping for SOFC application
Lu et al. Insight into the structure and functional application of Mg-doped Na0. 5Bi0. 5TiO3 electrolyte for solid oxide fuel cells
Yeh et al. Nanograin composite model studies of nanocrystalline gadolinia‐doped ceria
Lee et al. Determination of electronic and ionic conductivity in mixed ionic conductors: HiTEC and in-situ impedance spectroscopy analysis of isovalent and aliovalent doped BaTiO3
Ji et al. Influence of sintering activators on electrical property of BaZr0. 85Y0. 15O3-δ proton-conducting electrolyte
Chen et al. Effects of Bi deficiency on the microstructural and conductive properties of Na0. 5Bi0. 5TiO3 (NBT) perovskites
Zhao et al. Processing and characterization of Bi2O3 and Sm2O3 codoped CeO2 electrolyte for intermediate‐temperature solid oxide fuel cell
Cao Effect of Sr and Al or Fe co-doping on the sinterability and conductivity of lanthanum silicate oxyapatite electrolytes for solid oxide fuel cells
Shan et al. Synthesis and ionic-electronic conductivity of A-site deficient (Y, In) co-doped SrTiO3 as novel materials for mixed conductor