Utilizing High Entropy Effects for Developing Chromium‐Tolerance Cobalt‐Free Cathode for Solid Oxide Fuel Cells
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[1] C. Xia,et al. Cobalt-Free Double Perovskite Oxide as a Promising Cathode for Solid Oxide Fuel Cells. , 2023, ACS applied materials & interfaces.
[2] Zongping Shao,et al. High-Entropy Perovskite Oxide: A New Opportunity for Developing Highly Active and Durable Air Electrode for Reversible Protonic Ceramic Electrochemical Cells , 2022, Nano-Micro Letters.
[3] R. Song,et al. A Heuristic Approach to Boost the Performance and Cr Poisoning Tolerance of Solid Oxide Fuel Cell Cathode by Robust Multi-Doped Ceria Coating , 2022, Applied Catalysis B: Environmental.
[4] S. Jiang,et al. Promotional role of BaCO3 on the chromium–tolerance of La0.6Sr0.4Co0.2Fe0.8O3-δ cathodes of solid oxide fuel cells , 2022, Applied Catalysis B: Environmental.
[5] Zongping Shao,et al. One-Pot Derived Thermodynamically Quasi-Stable Triple Conducting Nanocomposite as Robust Bifunctional Air Electrode for Reversible Protonic Ceramic Cells , 2022, SSRN Electronic Journal.
[6] Yu Chen,et al. Surface Regulating of a Double‐Perovskite Electrode for Protonic Ceramic Fuel Cells to Enhance Oxygen Reduction Activity and Contaminants Poisoning Tolerance , 2022, Advanced Energy Materials.
[7] Yan Chen,et al. High-Entropy Perovskite as a High-Performing Chromium-Tolerant Cathode for Solid Oxide Fuel Cells. , 2022, ACS applied materials & interfaces.
[8] Yue Wang,et al. High Configuration Entropy Activated Lattice Oxygen for O2 Formation on Perovskite Electrocatalyst , 2022, Advanced Functional Materials.
[9] Xinmin Fu,et al. A-site deficient Fe-based double perovskite oxides PrxBaFe2O5+δ as cathodes for solid oxide fuel cells , 2022, Journal of Alloys and Compounds.
[10] P. Hendriksen,et al. Advanced Materials for Thin‐Film Solid Oxide Fuel Cells: Recent Progress and Challenges in Boosting the Device Performance at Low Temperatures , 2022, Advanced Functional Materials.
[11] Sun Liping,et al. A novel high-entropy cathode with the A2BO4-type structure for solid oxide fuel cells , 2021, Journal of Alloys and Compounds.
[12] K. Tang,et al. Tungsten-Doped PrBaFe2O5+δ Double Perovskite as a High-Performance Electrode Material for Symmetrical Solid Oxide Fuel Cells , 2021, ACS Applied Energy Materials.
[13] Zhenhua Wang,et al. Enhanced Electrochemical Performance of the Fe-Based Layered Perovskite Oxygen Electrode for Reversible Solid Oxide Cells. , 2021, ACS applied materials & interfaces.
[14] Yang Yang,et al. New approach to enhance Sr-free cathode performance by high-entropy multi-component transition metal coupling , 2021, Ceramics International.
[15] Zongping Shao,et al. Thermal-expansion offset for high-performance fuel cell cathodes , 2021, Nature.
[16] B. Lin,et al. A novel facile strategy to suppress Sr segregation for high-entropy stabilized La0·8Sr0·2MnO3-δ cathode , 2021, Journal of Power Sources.
[17] K. Yamaji,et al. A review of sulfur poisoning of solid oxide fuel cell cathode materials for solid oxide fuel cells , 2020 .
[18] Z. Lü,et al. Highly active and stable tin-doped perovskite-type oxides as cathode materials for solid oxide fuel cells , 2020 .
[19] Baomin Xu,et al. Efficient symmetrical electrodes of PrBaFe2-Co O5+δ (x=0, 0.2,0.4) for solid oxide fuel cells and solid oxide electrolysis cells , 2020 .
[20] Xianglin Liu,et al. Effect of nonequivalent substitution of Pr3+/4+ with Ca2+ in PrBaCoFeO5+δ as cathodes for IT-SOFC , 2020, Journal of Materials Science.
[21] F. Zhou,et al. Efficient and stable conversion of oxygen-bearing low-concentration coal mine methane by the electrochemical catalysis of SOFC anode: From pollutant to clean energy , 2020 .
[22] Kang Xu,et al. Enhanced Cr-tolerance of an SOFC cathode by an efficient electro-catalyst coating , 2020 .
[23] Ke-ning Sun,et al. Boosting the Electrochemical Performance of Fe-based layered double perovskite cathode by Zn2+ doping for solid oxide fuel cells. , 2020, ACS applied materials & interfaces.
[24] Ahmad Zubair Yahaya,et al. A review on recent status and challenges of yttria stabilized zirconia modification to lowering the temperature of solid oxide fuel cells operation , 2019, International Journal of Energy Research.
[25] Zhibin Yang,et al. Chromium deposition and poisoning on Ba0.9Co0.7Fe0.2Nb0.1O3−δ cathode of solid oxide fuel cells , 2018, Electrochimica Acta.
[26] H. Yoon,et al. Enhancement of oxygen reduction reaction through coating a nano-web-structured La0.6Sr0.4Co0.2Fe0.8O3-δ thin-film as a cathode/electrolyte interfacial layer for lowering the operating temperature of solid oxide fuel cells , 2018, Journal of Power Sources.
[27] L. Jian,et al. Promoted Cr-poisoning tolerance of La2NiO4+δ-coated PrBa0.5Sr0.5Co1.5Fe0.5O5+δ cathode for intermediate temperature solid oxide fuel cells , 2017 .
[28] E. Konysheva,et al. Quantitative characterization of Cr-adsorption on CeO2, pure and doped BaCeO3 and its impact on the electrochemical performance of Ce containing complex oxides , 2016 .
[29] Yi Cheng,et al. A new, high electrochemical activity and chromium tolerant cathode for solid oxide fuel cells , 2015 .
[30] Z. Lü,et al. Cr deposition on porous La0.6Sr0.4Co0.2Fe0.8O3 − δ electrodes of solid oxide cells under open circuit condition , 2015 .
[31] T. He,et al. Cobalt-free double perovskite cathode GdBaFeNiO5+δ and electrochemical performance improvement by Ce0.8Sm0.2O1.9 impregnation for intermediate-temperature solid oxide fuel cells , 2015 .
[32] A. Banerjee,et al. Progress in material selection for solid oxide fuel cell technology: A review , 2015 .
[33] S. Jiang,et al. Chromium deposition and poisoning of cathodes of solid oxide fuel cells – A review , 2014 .
[34] T. Rojo,et al. The Formation of Performance Enhancing Pseudo‐Composites in the Highly Active La1–xCaxFe0.8Ni0.2O3 System for IT‐SOFC Application , 2013 .
[35] T. He,et al. Double-perovskite PrBaCo2/3Fe2/3Cu2/3O5+δ as cathode material for intermediate-temperature solid-oxide fuel cells , 2013 .
[36] Zongping Shao,et al. Systematic evaluation of Co-free LnBaFe2O5+δ (Ln = Lanthanides or Y) oxides towards the application as cathodes for intermediate-temperature solid oxide fuel cells , 2012 .
[37] E. Wachsman,et al. Lowering the Temperature of Solid Oxide Fuel Cells , 2011, Science.
[38] X. Xue,et al. BaZr0.1Ce0.7Y0.1Yb0.1O3−δ electrolyte-based solid oxide fuel cells with cobalt-free PrBaFe2O5+δ layered perovskite cathode , 2010 .
[39] Chunwen Sun,et al. Cathode materials for solid oxide fuel cells: a review , 2010 .
[40] Raymond J. Gorte,et al. High‐Performance SOFC Cathodes Prepared by Infiltration , 2009 .
[41] Zongping Shao,et al. Evaluation of A-site cation-deficient (Ba0.5Sr0.5)1−xCo0.8Fe0.2O3−δ (x > 0) perovskite as a solid-oxide fuel cell cathode , 2008 .
[42] Zhihong Du,et al. Medium-Entropy perovskites Sr(FeαTiβCoγMnζ)O3-δ as promising cathodes for intermediate temperature solid oxide fuel cell , 2021 .
[43] Meilin Liu,et al. An In Situ Formed, Dual‐Phase Cathode with a Highly Active Catalyst Coating for Protonic Ceramic Fuel Cells , 2018 .
[44] S. Jiang,et al. Effect of Strontium Content on Chromium Deposition and Poisoning in Ba1−xSrxCo0.8Fe0.2O3−δ (0.3 ≤x ≤0.7) Cathodes of Solid Oxide Fuel Cells , 2011 .