A review on anode on-cell catalyst reforming layer for direct methane solid oxide fuel cells
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[1] Andrey Leonidovich Gusev,et al. Economic aspects of nuclear and hydrogen energy in the world and Russia , 2020 .
[2] M. Mohsin,et al. Integration of renewable hydrogen in light-duty vehicle: Nexus between energy security and low carbon emission resources , 2020 .
[3] A. Fazeli,et al. A Review on Catalysts Development for Steam Reforming of Biodiesel Derived Glycerol; Promoters and Supports , 2020, Catalysts.
[4] Yongliang Zhang,et al. Solid oxide fuel cells fueled by simulated biogas: Comparison of anode modification by infiltration and reforming catalytic layer , 2020 .
[5] F. Chen,et al. Power and carbon monoxide co-production by a proton-conducting solid oxide fuel cell with La0.6Sr0.2Cr0.85Ni0.15O3−δ for on-cell dry reforming of CH4 by CO2 , 2020 .
[6] Z. Tišler,et al. Recent advances in Fischer-Tropsch synthesis using cobalt-based catalysts: a review on supports, promoters, and reactors , 2020, Catalysis Reviews.
[7] A. Perna,et al. Techno-economics of novel refueling stations based on ammonia-to-hydrogen route and SOFC technology , 2020 .
[8] Jingli Luo,et al. CO2 dry reforming of CH4 with Sr and Ni co-doped LaCrO3 perovskite catalysts , 2020 .
[9] Alberto Boretti,et al. Production of hydrogen for export from wind and solar energy, natural gas, and coal in Australia , 2020 .
[10] C. Au,et al. Influence of reduction temperature on Ni particle size and catalytic performance of Ni/Mg(Al)O catalyst for CO2 reforming of CH4 , 2020 .
[11] Gabriele Moser,et al. Data-driven fault diagnosis in SOFC-based power plants under off-design operating conditions , 2019, International Journal of Hydrogen Energy.
[12] A. A. Jalil,et al. A review on catalyst development for dry reforming of methane to syngas: Recent advances , 2019, Renewable and Sustainable Energy Reviews.
[13] Hyun-Seog Roh,et al. A review on dry reforming of methane in aspect of catalytic properties , 2019, Catalysis Today.
[14] Dequn Zhou,et al. A Study of Regional Power Generation Efficiency in China: Based on a Non-Radial Directional Distance Function Model , 2019, Sustainability.
[15] T. He,et al. Electron doping of Sr2FeMoO6−δ as high performance anode materials for solid oxide fuel cells , 2019, Journal of Materials Chemistry A.
[16] Yu Chen,et al. A robust fuel cell operated on nearly dry methane at 500 °C enabled by synergistic thermal catalysis and electrocatalysis , 2018, Nature Energy.
[17] Jianguo Jiang,et al. A review of recent developments in hydrogen production via biogas dry reforming , 2018, Energy Conversion and Management.
[18] B. Chi,et al. LaMnO3-based perovskite with in-situ exsolved Ni nanoparticles: a highly active, performance stable and coking resistant catalyst for CO2 dry reforming of CH4 , 2018, Applied Catalysis A: General.
[19] Zhe Cheng,et al. Poisoning of Ni-Based anode for proton conducting SOFC by H 2 S, CO 2 , and H 2 O as fuel contaminants , 2018 .
[20] Joseph Zeaiter,et al. Catalyst design for dry reforming of methane: Analysis review , 2018 .
[21] S. Kawi,et al. A Review on Bimetallic Nickel-Based Catalysts for CO2 Reforming of Methane. , 2017, Chemphyschem : a European journal of chemical physics and physical chemistry.
[22] Shaomin Liu,et al. Proton-Conducting La-Doped Ceria-Based Internal Reforming Layer for Direct Methane Solid Oxide Fuel Cells. , 2017, ACS applied materials & interfaces.
[23] M. Li,et al. Alternative Fuel Cell Technologies for Cogenerating Electrical Power and Syngas from Greenhouse Gases , 2017 .
[24] Zongping Shao,et al. Co-generation of electricity and syngas on proton-conducting solid oxide fuel cell with a perovskite layer as a precursor of a highly efficient reforming catalyst , 2017 .
[25] Zhonghua Zhu,et al. An in situ formed MnO–Co composite catalyst layer over Ni–Ce0.8Sm0.2O2−x anodes for direct methane solid oxide fuel cells , 2017 .
[26] K. Hidajat,et al. Highly reactive Ni-Co/SiO2 bimetallic catalyst via complexation with oleylamine/oleic acid organic pair for dry reforming of methane , 2017 .
[27] Z. Shariatinia,et al. High catalytic activity and stability of ZnLaAlO4 supported Ni, Pt and Ru nanocatalysts applied in the dry, steam and combined dry-steam reforming of methane , 2016 .
[28] Pascale Massiani,et al. Low temperature dry reforming of methane on rhodium and cobalt based catalysts: Active phase stabilization by confinement in mesoporous SBA-15 , 2016 .
[29] Turgut M. Gür,et al. Comprehensive review of methane conversion in solid oxide fuel cells: Prospects for efficient electricity generation from natural gas , 2016 .
[30] Jingli Luo,et al. Carbon-resistant Ni-Zr0.92Y0.08O2-δ supported solid oxide fuel cells using Ni-Cu-Fe alloy cermet as on-cell reforming catalyst and mixed methane-steam as fuel , 2016 .
[31] Jian Li,et al. Novel layered solid oxide fuel cells with multiple-twinned Ni0.8Co0.2 nanoparticles: the key to thermally independent CO2 utilization and power-chemical cogeneration , 2016 .
[32] Jennifer Wilcox,et al. Advances on methane steam reforming to produce hydrogen through membrane reactors technology: A review , 2016 .
[33] D. Uner,et al. Dry reforming of methane over CeO2 supported Ni, Co and Ni–Co catalysts , 2015 .
[34] Peng Zhang,et al. Phyllosilicate evolved hierarchical Ni- and Cu–Ni/SiO2 nanocomposites for methane dry reforming catalysis , 2015 .
[35] P. D. de Jongh,et al. Recent developments in the synthesis of supported catalysts. , 2015, Chemical reviews.
[36] G. Deo,et al. Modifying alumina with CaO or MgO in supported Ni and Ni–Co catalysts and its effect on dry reforming of CH4 , 2015 .
[37] F. Chen,et al. Sulfur‐Tolerant Hierarchically Porous Ceramic Anode‐Supported Solid‐Oxide Fuel Cells with Self‐Precipitated Nanocatalyst , 2015 .
[38] Edgar G. Hertwich,et al. Multiregional environmental comparison of fossil fuel power generation—Assessment of the contribution of fugitive emissions from conventional and unconventional fossil resources , 2015 .
[39] Fei Yu,et al. Progress and perspectives in converting biogas to transportation fuels , 2014 .
[40] F. Chen,et al. Direct-Methane Solid Oxide Fuel Cells with Hierarchically Porous Ni-Based Anode Deposited with Nanocatalyst Layer , 2014 .
[41] Shuirong Li,et al. Strategies for improving the performance and stability of Ni-based catalysts for reforming reactions. , 2014, Chemical Society reviews.
[42] S. Kaliaguine,et al. Nanocast LaNiO3 Perovskites as Precursors for the Preparation of Coke-Resistant Dry Reforming Catalysts , 2014 .
[43] Fereshteh Meshkani,et al. Effect of alkaline earth promoters (MgO, CaO, and BaO) on the activity and coke formation of Ni catalysts supported on nanocrystalline Al2O3 in dry reforming of methane , 2014 .
[44] Huaiyu Zhu,et al. A NiFeCu alloy anode catalyst for direct-methane solid oxide fuel cells , 2014 .
[45] M. Li,et al. BaZr0.1Ce0.7Y0.1Yb0.1O3−δ enhanced coking-free on-cell reforming for direct-methane solid oxide fuel cells , 2014 .
[46] Yalin Lu,et al. Carbon-tolerant solid oxide fuel cells using NiTiO3 as an anode internal reforming layer , 2014 .
[47] X. Tan,et al. Carbon-resistant Ni-YSZ/Cu–CeO2-YSZ dual-layer hollow fiber anode for micro tubular solid oxide fuel cell , 2014 .
[48] A. Lemonidou,et al. State-of-the-art catalysts for CH4 steam reforming at low temperature , 2014 .
[49] J. Nagy,et al. Effect of support surface on methane dry-reforming catalyst preparation , 2013 .
[50] Sudarno,et al. CeO2–SiO2 supported nickel catalysts for dry reforming of methane toward syngas production , 2013 .
[51] Zheng Jiang,et al. Comparative study of the dry reforming of methane on fluidised aerogel and xerogel Ni/Al2O3 catalysts , 2013, Applied Petrochemical Research.
[52] P. Estifaee,et al. Synthesis and physicochemical characterizations of Ni/Al2O3–ZrO2 nanocatalyst prepared via impregnation method and treated with non-thermal plasma for CO2 reforming of CH4 , 2013 .
[53] Zongping Shao,et al. Progress in solid oxide fuel cells with nickel-based anodes operating on methane and related fuels. , 2013, Chemical reviews.
[54] K. Sasaki,et al. Feasibility of palm‐biodiesel fuel for a direct internal reforming solid oxide fuel cell , 2013 .
[55] H. Alves,et al. Overview of hydrogen production technologies from biogas and the applications in fuel cells , 2013 .
[56] P. Canton,et al. Optimization of bimetallic dry reforming catalysts by temperature programmed reaction , 2012 .
[57] Qiang Sun,et al. Solid Oxide Fuel Cell Anode Materials for Direct Hydrocarbon Utilization , 2012 .
[58] J. P. Holgado,et al. LaNiO3 as a precursor of Ni/La2O3 for CO2 reforming of CH4: Effect of the presence of an amorphous NiO phase , 2012 .
[59] Xiaohong Zhang,et al. Modification effect of natural mixed rare earths on Co/γ-Al2O3 catalysts for CH4/CO2 reforming to synthesis gas , 2012 .
[60] Peng Zhang,et al. Effect of a second metal (Y, K, Ca, Mn or Cu) addition on the carbon dioxide reforming of methane over nanostructured palladium catalysts , 2012 .
[61] Chenghao Yang,et al. Sulfur‐Tolerant Redox‐Reversible Anode Material for Direct Hydrocarbon Solid Oxide Fuel Cells , 2012, Advanced materials.
[62] J. P. Holgado,et al. In Situ XAS Study of Synergic Effects on Ni–Co/ZrO2 Methane Reforming Catalysts , 2012 .
[63] J. Rostrup-Nielsen,et al. Whisker carbon in perspective , 2011 .
[64] Bengt Sundén,et al. Review of catalyst materials and catalytic steam reforming reactions in SOFC anodes , 2011 .
[65] M. Larrubia,et al. RhNi nanocatalysts for the CO2 and CO2 + H2O reforming of methane , 2011 .
[66] G. Guan,et al. Degradation mechanism of Ni-based anode in low concentrations of dry methane , 2011 .
[67] E. Assaf,et al. Methane conversion reactions on Ni catalysts promoted with Rh: Influence of support , 2011 .
[68] Ejm Emiel Hensen,et al. Influence of particle size on the activity and stability in steam methane reforming of supported Rh nanoparticles , 2011 .
[69] Ping Liu,et al. Promotion of water-mediated carbon removal by nanostructured barium oxide/nickel interfaces in solid oxide fuel cells , 2011, Nature communications.
[70] F. Chen,et al. Sm 0.2 (Ce 1-x Ti x ) 0.8 O 1.9 Modified Ni-Yttria-Stabilized Zirconia Anode for Direct Methane Fuel Cell , 2011 .
[71] John T. S. Irvine,et al. Recent Progress in the Development of Anode Materials for Solid Oxide Fuel Cells , 2011 .
[72] Zongping Shao,et al. A new Gd-promoted nickel catalyst for methane conversion to syngas and as an anode functional layer , 2011 .
[73] David M J S Bowman,et al. Flammable biomes dominated by eucalypts originated at the Cretaceous-Palaeogene boundary. , 2011, Nature communications.
[74] Hyunjoon Lee,et al. Enhanced stability of Ni–Fe/GDC solid oxide fuel cell anodes for dry methane fuel , 2010 .
[75] Chenghao Yang,et al. Direct-methane solid oxide fuel cells with Cu1.3Mn1.7O4 spinel internal reforming layer , 2010 .
[76] Shahram Sharifnia,et al. Kinetic investigation of CO2 reforming of CH4 over La-Ni based perovskite , 2010 .
[77] Michael C. Tucker,et al. Progress in metal-supported solid oxide fuel cells: A review , 2010 .
[78] Allan J. Jacobson,et al. Materials for Solid Oxide Fuel Cells , 2010 .
[79] Jens R. Rostrup-Nielsen,et al. Steady-state kinetics and mechanism of methane reforming with steam and carbon dioxide over Ni catalyst , 2010 .
[80] A. E. Aksoylu,et al. The effect of impregnation strategy on methane dry reforming activity of Ce promoted Pt/ZrO2 , 2009 .
[81] I. Yamanaka,et al. Alloying effects of Pd and Ni on the catalysis of the oxidation of dry CH4 in solid oxide fuel cells , 2009 .
[82] Subhash Bhatia,et al. Catalytic Technology for Carbon Dioxide Reforming of Methane to Synthesis Gas , 2009 .
[83] J. Radnik,et al. Development of Ni-Pd bimetallic catalysts for the utilization of carbon dioxide and methane by dry reforming , 2009 .
[84] San Ping Jiang,et al. Electrocatalytic Promotion of Palladium Nanoparticles on Hydrogen Oxidation on Ni/GDC Anodes of SOFCs via Spillover , 2009 .
[85] J. D. Stuart,et al. Demonstration of a Liquid-Tin Anode Solid-Oxide Fuel Cell (LTA-SOFC) Operating from Biodiesel Fuel , 2009 .
[86] H. Yahiro,et al. Improvement of Ni/SDC anode by alkaline earth metal oxide addition for direct methane–solid oxide fuel cells , 2009 .
[87] A. Aboukaïs,et al. Dry reforming of methane in the presence of ruthenium-based catalysts , 2009 .
[88] J. Mukhopadhyay,et al. Processing of high-performance anode-supported planar solid oxide fuel cell , 2008 .
[89] Hwan Moon,et al. Development of IT-SOFC unit cells with anode-supported thin electrolytes via tape casting and co-firing , 2008 .
[90] Xiujuan Sun,et al. Use of a catalyst layer for anode-supported SOFCs running on ethanol fuel , 2008 .
[91] Ta-Jen Huang,et al. Electrochemical promotion of bulk lattice-oxygen extraction for syngas generation over Ni-GDC anodes in direct-methane SOFCs , 2008 .
[92] Pengju Shi,et al. Preparation and characterization of coke resistant Ni/SiO2 catalyst for carbon dioxide reforming of methane , 2008 .
[93] J. Zhu,et al. Cu(Pd)-impregnated La0.75Sr0.25Cr0.5Mn0.5O3 − δ anodes for direct utilization of methane in SOFC , 2007 .
[94] G. Meng,et al. Electrochemical performance of IT-SOFCs with a double-layer anode , 2007 .
[95] J. Fierro,et al. Structural and surface features of PtNi catalysts for reforming of methane with CO2 , 2007 .
[96] T. Wen,et al. A direct-methane solid oxide fuel cell with a double-layer anode , 2006 .
[97] F. Mondragón,et al. CO2 reforming of CH4 over La–Ni based perovskite precursors , 2006 .
[98] Shengfu Ji,et al. Structural Characterization of Highly Stable Ni/SBA-15 Catalyst and Its Catalytic Performance for Methane Reforming with CO2 , 2006 .
[99] A. Ballarini,et al. Reforming of CH4 with CO2 on Pt-supported catalysts: Effect of the support on the catalytic behaviour , 2005 .
[100] S. Barnett,et al. An Octane-Fueled Solid Oxide Fuel Cell , 2005, Science.
[101] Ta-Jen Huang,et al. Effects of carbon deposition and de-coking treatments on the activation of CH4 and CO2 in CO2 reforming of CH4 over Ni/yttria-doped ceria catalysts , 2004 .
[102] R. Gorte,et al. Direct hydrocarbon solid oxide fuel cells. , 2004, Chemical reviews.
[103] S. Jiang,et al. A review of anode materials development in solid oxide fuel cells , 2004 .
[104] Tohru Kato,et al. Design of metal/oxide interfaces for the direct introduction of hydrocarbons into SOFCs , 2004 .
[105] Kevin Kendall,et al. Formulating liquid hydrocarbon fuels for SOFCs , 2004 .
[106] Seetharama C. Deevi,et al. A review on the status of anode materials for solid oxide fuel cells , 2003 .
[107] T. Yashima,et al. Small Amounts of Rh-Promoted Ni Catalysts for Methane Reforming with CO2 , 2003 .
[108] A. Tsyganok. Dry reforming of methane over supported noble metals: a novel approach to preparing catalysts , 2003 .
[109] Takashi Hibino,et al. Ru-catalyzed anode materials for direct hydrocarbon SOFCs , 2003 .
[110] S. Takenaka,et al. Ni/SiO2 catalyst effective for methane decomposition into hydrogen and carbon nanofiber , 2003 .
[111] Scott A. Barnett,et al. Operation of anode-supported solid oxide fuel cells on methane and natural gas , 2003 .
[112] Ryuji Kikuchi,et al. Study on steam reforming of CH4 and C2 hydrocarbons and carbon deposition on Ni-YSZ cermets , 2002 .
[113] K. Ahmed,et al. Kinetics of internal steam reforming of methane on Ni/YSZ-based anodes for solid oxide fuel cells , 2000 .
[114] Malcolm L. H. Green,et al. Dry reforming of methane to synthesis gas over supported molybdenum carbide catalysts , 2000 .
[115] James A. Anderson,et al. Mechanistic aspects of the dry reforming of methane over ruthenium catalysts , 2000 .
[116] Jin-Hong Kim,et al. Effect of metal particle size on coking during CO2 reforming of CH4 over Ni–alumina aerogel catalysts , 2000 .
[117] Mogens Bjerg Mogensen,et al. High-temperature conversion of methane on a composite gadolinia-doped ceria–gold electrode , 1999 .
[118] S. A. Barnett,et al. A direct-methane fuel cell with a ceria-based anode , 1999, Nature.
[119] Y. Schuurman,et al. A transient kinetic study of the carbon dioxide reforming of methane over supported Ru catalysts , 1999 .
[120] Toshimitsu Suzuki,et al. Reaction mechanisms of carbon dioxide reforming of methane with Ru-loaded lanthanum oxide catalyst , 1999 .
[121] J. Lercher,et al. Mono and bifunctional pathways of CO2/CH4 reforming over Pt and Rh based catalysts , 1998 .
[122] V. Choudhary,et al. Simultaneous steam and CO2 reforming of methane to syngas over NiO/MgO/SA-5205 in presence and absence of oxygen , 1998 .
[123] V. Choudhary,et al. Beneficial effects of cobalt addition to Ni-catalysts for oxidative conversion of methane to syngas , 1997 .
[124] Daniel Montané,et al. Biomass to hydrogen via fast pyrolysis and catalytic steam reforming of the pyrolysis oil or its fractions , 1996 .
[125] T. Fukui,et al. Suppression of carbon deposition in the CO2-reforming of CH4 by adding basic metal oxides to a Ni/Al2O3 catalyst , 1996 .
[126] Gao Qing Lu,et al. Carbon Dioxide Reforming of Methane To Produce Synthesis Gas over Metal-Supported Catalysts: State of the Art , 1996 .
[127] X. Verykios,et al. Comparative Study of Carbon Dioxide Reforming of Methane to Synthesis Gas over Ni/La2O3 and Conventional Nickel-Based Catalysts , 1996 .
[128] Xiaoyang Zhu,et al. CH bond cleavage for ethylene and acetylene on Ni(100) , 1988 .
[129] J. Geus,et al. Elimination of the water-gas shift reaction by direct processing of CO/H2/H2O over Ni/SiO2 catalysts , 1984 .
[130] Yin Zhang,et al. Comparative Studies of Non‐noble Metal Modified Mesoporous M‐Ni‐CaO‐ZrO2 (M=Fe, Co, Cu) Catalysts for Simulated Biogas Dry Reforming , 2017 .
[131] H. Pahlavanzadeh,et al. Syngas Production from Reforming of Methane with CO2 and O2 over LaNi1–xCoxO3 Perovskites , 2014 .
[132] A. Monzón,et al. Steam-methane reforming at low temperature on nickel-based catalysts , 2014 .
[133] Zongping Shao,et al. Combustion-synthesized Ru-Al2O3 composites as anode catalyst layer of a solid oxide fuel cell operating on methane , 2011 .
[134] Zongping Shao,et al. Lithium and lanthanum promoted Ni-Al2O3 as an active and highly coking resistant catalyst layer for solid-oxide fuel cells operating on methane , 2011 .
[135] M. Wietschel,et al. The future of hydrogen : opportunities and challenges , 2009 .
[136] Zheng Jiang,et al. Characterization of aerogel Ni/Al2O3 catalysts and investigation on their stability for CH4-CO2 reforming in a fluidized bed , 2009 .
[137] Wei Wang,et al. Methane-fueled SOFC with traditional nickel-based anode by applying Ni/Al2O3 as a dual-functional layer , 2009 .
[138] Robert J. Kee,et al. Solid-oxide fuel cells with hydrocarbon fuels , 2005 .
[139] S. Barnett,et al. Operation of Low Temperature SOFCs on Pure Methane and Ethane Without Carbon Deposition , 1999 .