Works matching DE "SOLID oxide fuel cell electrodes"
Results: 76
Electrochemical performance of La<sub>0.8</sub>A<sub>0.2</sub>TiO<sub>3-δ</sub> (A = Li, Mg) based perovskites for solid oxide fuel cell electrode.
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- Materials Research Innovations, 2024, v. 28, n. 7, p. 579, doi. 10.1080/14328917.2024.2349845
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An Effective Strategy to Enhance the Electrocatalytic Activity of Ruddlesden−Popper Oxides Sr 3 Fe 2 O 7− δ Electrodes for Solid Oxide Fuel Cells.
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- Catalysts (2073-4344), 2021, v. 11, n. 11, p. 1400, doi. 10.3390/catal11111400
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The Effect of Ni-Modified LSFCO Promoting Layer on the Gas Produced through Co-Electrolysis of CO 2 and H 2 O at Intermediate Temperatures.
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- Catalysts (2073-4344), 2021, v. 11, n. 1, p. 56, doi. 10.3390/catal11010056
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Synthesis and Evaluation of Ni Catalysts Supported on BaCe<sub>0.5</sub>Zr<sub>0.3-x</sub>Y0.2Ni<sub>x</sub>O<sub>3-δ</sub> with Fused-Aggregate Network Structure for the Hydrogen Electrode of Solid Oxide Electrolysis Cell.
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- Catalysts (2073-4344), 2017, v. 7, n. 7, p. 223, doi. 10.3390/catal7070223
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Suspension Plasma Sprayed SrFeMoO Electrodes for Solid Oxide Fuel Cells.
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- Journal of Thermal Spray Technology, 2017, v. 26, n. 3, p. 432, doi. 10.1007/s11666-016-0478-5
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Relationship Between Particle and Plasma Properties and Coating Characteristics of Samaria-Doped Ceria Prepared by Atmospheric Plasma Spraying for Use in Solid Oxide Fuel Cells.
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- Journal of Thermal Spray Technology, 2012, v. 21, n. 3/4, p. 448, doi. 10.1007/s11666-012-9742-5
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Deposition of Composite LSCF-SDC and SSC-SDC Cathodes by Axial-Injection Plasma Spraying.
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- Journal of Thermal Spray Technology, 2012, v. 21, n. 3/4, p. 461, doi. 10.1007/s11666-012-9757-y
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Room temperature hardness of gadolinia-doped ceria as a function of porosity.
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- Journal of Materials Science, 2013, v. 48, n. 20, p. 6977, doi. 10.1007/s10853-013-7506-3
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Catalytic study of SOFC electrode materials in engine exhaust gas atmosphere.
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- Journal of Materials Science, 2013, v. 48, n. 20, p. 7184, doi. 10.1007/s10853-013-7535-y
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Preparation, properties, and reactivity of lanthanum strontium ferrite as an intermediate temperature SOFC cathode.
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- Journal of Materials Science, 2013, v. 48, n. 19, p. 6597, doi. 10.1007/s10853-013-7456-9
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An active and stable hydrogen electrode of solid oxide cells with exsolved Fe--Co--Ni nanoparticles from Sr<sub>2</sub>FeCo<sub>0.2</sub>Ni<sub>0.2</sub>Mo0.6O<sub>6-δ</sub> double-perovskite.
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- Advanced Powder Materials, 2023, v. 2, n. 4, p. 1, doi. 10.1016/j.apmate.2023.100133
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Nonstoichiometric Strontium Ferromolybdate as an Electrode Material for Solid Oxide Fuel Cells.
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- Inorganics, 2022, v. 10, n. 12, p. 230, doi. 10.3390/inorganics10120230
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Solvothermal Synthesis Routes to Substituted Cerium Dioxide Materials.
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- Inorganics, 2021, v. 9, n. 6, p. 40, doi. 10.3390/inorganics9060040
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Tailoring SOFC Electrode Microstructures for Improved Performance.
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- Advanced Energy Materials, 2018, v. 8, n. 23, p. 1, doi. 10.1002/aenm.201800120
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High-Performance Silver Cathode Surface Treated with Scandia-Stabilized Zirconia Nanoparticles for Intermediate Temperature Solid Oxide Fuel Cells.
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- Advanced Energy Materials, 2017, v. 7, n. 4, p. n/a, doi. 10.1002/aenm.201601956
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An Overview on the Novel Core-Shell Electrodes for Solid Oxide Fuel Cell (SOFC) Using Polymeric Methodology.
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- Polymers (20734360), 2021, v. 13, n. 16, p. 2774, doi. 10.3390/polym13162774
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Synthesis of new Mn/Ti containing perovskites and examination of their potential for use as solid oxide fuel cell electrodes.
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- International Journal of Low Carbon Technologies, 2012, v. 7, n. 1, p. 60, doi. 10.1093/ijlct/ctr021
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Nanostructured and Nonsymmetrical NiO–SDC/SDC Composite Anode Performance via a Microwave-Assisted Route for Intermediate-Temperature Solid Oxide Fuel Cells.
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- Materials & Manufacturing Processes, 2016, v. 31, n. 10, p. 1301, doi. 10.1080/10426914.2015.1048466
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Effects of NiO/GDC Ratios and Additives on Electrical Properties of SOFC Anodes.
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- Materials & Manufacturing Processes, 2014, v. 29, n. 7, p. 767, doi. 10.1080/10426914.2013.864395
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Synthesis and characterization of LaFeO<sub>3</sub> powders prepared by a mixed mechanical/thermal processing route.
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- Journal of Thermal Analysis & Calorimetry, 2018, v. 133, n. 1, p. 413, doi. 10.1007/s10973-017-6878-z
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Oxidation of carbon deposits on anode material Ni-YSZ in solid oxide fuel cells.
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- Journal of Thermal Analysis & Calorimetry, 2017, v. 127, n. 1, p. 265, doi. 10.1007/s10973-016-5671-8
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Cu–CeO<sub>2</sub>/YSZ electrodes for SOFCs: role of cermet meso/nanostructure in methane oxidation.
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- Journal of Materials Science, 2024, v. 59, n. 38, p. 18130, doi. 10.1007/s10853-024-10274-7
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Boosting the Performance of La<sub>0.8</sub>Sr<sub>0.2</sub>MnO<sub>3‐δ</sub> Electrodes by The Incorporation of Nanocomposite Active Layers.
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- Advanced Materials Interfaces, 2022, v. 9, n. 22, p. 1, doi. 10.1002/admi.202200702
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Improvement of Oxygen Electrode Performance of Intermediate Temperature Solid Oxide Cells by Spray Pyrolysis Deposited Active Layers.
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- Advanced Materials Interfaces, 2021, v. 8, n. 9, p. 1, doi. 10.1002/admi.202002227
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Sintering Aids Strategies for Improving LSGM and LSF Materials for Symmetrical Solid Oxide Fuel Cell.
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- Applied Sciences (2076-3417), 2024, v. 14, n. 19, p. 8923, doi. 10.3390/app14198923
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Special Issue on Promising Materials and Technologies for Solid Oxide Electrochemical Devices.
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- Applied Sciences (2076-3417), 2022, v. 12, n. 19, p. 9419, doi. 10.3390/app12199419
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A Theoretical Model for the Triple Phase Boundary of Solid Oxide Fuel Cell Electrospun Electrodes.
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- Applied Sciences (2076-3417), 2019, v. 9, n. 3, p. 493, doi. 10.3390/app9030493
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Insights in to the Electrochemical Activity of Fe-Based Perovskite Cathodes toward Oxygen Reduction Reaction for Solid Oxide Fuel Cells.
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- Coatings (2079-6412), 2020, v. 10, n. 12, p. 1260, doi. 10.3390/coatings10121260
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Enhanced Performance of La 0.8 Sr 0.2 FeO 3-δ -Gd 0.2 Ce 0.8 O 2-δ Cathode for Solid Oxide Fuel Cells by Surface Modification with BaCO 3 Nanoparticles.
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- Micromachines, 2022, v. 13, n. 6, p. 884, doi. 10.3390/mi13060884
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Thin Solid Film Electrolyte and Its Impact on Electrode Polarization in Solid Oxide Fuel Cells Studied by Three-Dimensional Microstructure-Scale Numerical Simulation.
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- Energies (19961073), 2020, v. 13, n. 19, p. 5127, doi. 10.3390/en13195127
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Effect of Strontium-Doped Lanthanum Vanadate on Crystal Structure, Conductivity and Vanadium Valence State of a LaSrVO Anode in a Reducing Environment.
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- Journal of Electronic Materials, 2017, v. 46, n. 4, p. 2301, doi. 10.1007/s11664-016-5268-9
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Stochastic 3D Modeling of Three-Phase Microstructures for Predicting Transport Properties: A Case Study.
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- Transport in Porous Media, 2019, v. 128, n. 1, p. 179, doi. 10.1007/s11242-019-01240-y
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(La,Sr)(Ti,Fe)O<sub>3-δ</sub> perovskite with in-situ constructed FeNi<sub>3</sub> nanoparticles as fuel electrode for reversible solid oxide cell.
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- International Journal of Energy Research, 2021, v. 45, n. 15, p. 21264, doi. 10.1002/er.7177
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Fabrication of high‐quality electrode films for solid oxide fuel cell by screen printing: A review on important processing parameters.
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- International Journal of Energy Research, 2020, v. 44, n. 11, p. 8296, doi. 10.1002/er.5518
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A numerical study of infiltrated solid oxide fuel cell electrode with dual‐phase backbone.
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- International Journal of Energy Research, 2019, v. 43, n. 7, p. 2562, doi. 10.1002/er.4129
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Electrical Properties Of Indium And Yttrium-Doped Barium Cerate-Based Compounds For Use As Ceramic Fuel Cell Electrolytes.
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- Archives of Metallurgy & Materials, 2015, v. 60, n. 2, p. 989, doi. 10.1515/amm-2015-0247
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Is Fluorine Incorporation in the La<sub>0.6</sub>Sr<sub>0.4</sub>Co<sub>0.2</sub>Fe<sub>0.8</sub>O<sub>3−</sub><sub>δ</sub> Improving Its Electrochemical Behavior for Solid Oxide Cells Applications?
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- Advanced Energy Materials, 2024, v. 14, n. 32, p. 1, doi. 10.1002/aenm.202401518
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- Article
π Learning: A Performance‐Informed Framework for Microstructural Electrode Design.
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- Advanced Energy Materials, 2023, v. 13, n. 17, p. 1, doi. 10.1002/aenm.202300244
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A Ferric-Air Battery base on Solid Oxide Fuel Cell for Electrical Energy Storage.
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- Journal of New Materials for Electrochemical Systems, 2013, v. 16, n. 4, p. 257, doi. 10.14447/jnmes.v16i4.150
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Recent Progress on the Materials of Oxygen Ion-Conducting Solid Oxide Fuel Cells and Experimental Analysis of Biogas-Assisted Electrolysis over a LSC Anode.
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- Energies (19961073), 2024, v. 17, n. 22, p. 5526, doi. 10.3390/en17225526
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A Surrogate Model of the Butler-Volmer Equation for the Prediction of Thermodynamic Losses of Solid Oxide Fuel Cell Electrode.
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- Energies (19961073), 2023, v. 16, n. 15, p. 5651, doi. 10.3390/en16155651
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Microstructure Generation via Generative Adversarial Network for Heterogeneous, Topologically Complex 3D Materials.
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- JOM: The Journal of The Minerals, Metals & Materials Society (TMS), 2021, v. 73, n. 1, p. 90, doi. 10.1007/s11837-020-04484-y
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The effect of mass transfer on electrochemical impedance of a solid oxide fuel cell anode.
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- Journal of Solid State Electrochemistry, 2014, v. 18, n. 10, p. 2815, doi. 10.1007/s10008-014-2536-6
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LA-ICP-MS and EDS characterization of electrode/electrolyte interfaces in IT-SOFC materials.
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- Applied Physics A: Materials Science & Processing, 2013, v. 111, n. 3, p. 887, doi. 10.1007/s00339-012-7309-4
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Frontmatter.
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- Reviews in Chemical Engineering, 2020, v. 36, n. 8, p. i, doi. 10.1515/revce-2020-frontmatter2
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- Article
Progress in the use of electrospun nanofiber electrodes for solid oxide fuel cells: a review.
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- Reviews in Chemical Engineering, 2020, v. 36, n. 8, p. 879, doi. 10.1515/revce-2018-0074
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Sensitivity analysis of thermal stress in a cathode porous electrode for a planar solid oxide fuel cell.
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- Energy Sources Part A: Recovery, Utilization & Environmental Effects, 2021, v. 43, n. 24, p. 3357, doi. 10.1080/15567036.2019.1607951
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- Article
Determination with a Genetic Algorithm of Reactant Coverages on H<sub>2</sub>/H<sub>2</sub>O Electrodes Based on Electrochemical Kinetics Under Reversible SOFC/EC Operation▴.
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- Fuel Cells, 2020, v. 20, n. 6, p. 661, doi. 10.1002/fuce.201900213
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Developing a Coupled Statistical and Monte Carlo Approach for Geometric Modeling and Optimizing of Infiltrated Solid Oxide Fuel Cell Electrode.
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- Fuel Cells, 2019, v. 19, n. 2, p. 112, doi. 10.1002/fuce.201800095
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Relation Between Ni Particle Shape Change and Ni Migration in Ni-YSZ Electrodes - a Hypothesis.
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- Fuel Cells, 2017, v. 17, n. 4, p. 434, doi. 10.1002/fuce.201600222
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- Article