Nano-LaCoO3 infiltrated BaZr0.8Y0.2O3− electrodes for steam splitting in protonic ceramic electrolysis cells
Tài liệu tham khảo
Leung, 2014, An overview of current status of carbon dioxide capture and storage technologies, Renew. Sustain. Energy Rev., 39, 426, 10.1016/j.rser.2014.07.093
Armaroli, 2011, Towards an electricity-powered world, Energy Environ. Sci., 4, 3193, 10.1039/c1ee01249e
Christopher, 2012, A review on exergy comparison of hydrogen production methods from renewable energy sources, Energy Environ. Sci., 5, 6640, 10.1039/c2ee01098d
Graetz, 2009, New approaches to hydrogen storage, Chem. Soc. Rev., 38, 73, 10.1039/B718842K
Baykara, 2018, Hydrogen: a brief overview on its sources, production and environmental impact, Int. J. Hydrogen Energy, 43, 10605, 10.1016/j.ijhydene.2018.02.022
Hauch, 2020, Recent advances in solid oxide cell technology for electrolysis, Science, 370, 6513, 10.1126/science.aba6118
Ovtar, 2019, Boosting the performance and durability of Ni/YSZ cathode for hydrogen production at high current densities: via decoration with nano-sized electrocatalysts, Nanoscale, 11, 4394, 10.1039/C8NR07678B
Duan, 2018, Highly durable, coking and sulfur tolerant, fuel-flexible protonic ceramic fuel cells, Nature, 557, 217, 10.1038/s41586-018-0082-6
Zhang, 2017, Recent progress on advanced materials for solid-oxide fuel cells operating below 500 °C, Adv. Mater., 29
Ni, 2008, Electrochemical modeling of hydrogen production by proton-conducting solid oxide steam electrolyzer, Int. J. Hydrogen Energy, 33, 4040, 10.1016/j.ijhydene.2008.05.065
Luo, 2015, Methane synthesis characteristics of H2O/CO2 Co-electrolysis in tubular solid oxide electrolysis cells, ECS Transactions, 68, 3465, 10.1149/06801.3465ecst
Graves, 2011, Sustainable hydrocarbon fuels by recycling CO2 electrolysis of carbon dioxide in the production of sustainable hydrocarbon fuels and H2O with renewable or nuclear energy, Renew. Sustain. Energy Rev., 15, 1, 10.1016/j.rser.2010.07.014
Shi, 2019, Controllable CO2 conversion in high performance proton conducting solid oxide electrolysis cells and the possible mechanisms, J. Mater. Chem., 7, 4855, 10.1039/C8TA12458B
Fabbri, 2010, Materials challenges toward proton-conducting oxide fuel cells: a critical review, Chem. Soc. Rev., 39, 4355, 10.1039/b902343g
Ruiz-Morales, 2011, Symmetric and reversible solid oxide fuel cells, RSC Adv., 1, 1403, 10.1039/c1ra00284h
He, 2010, Electrode performance and analysis of reversible solid oxide fuel cells with proton conducting electrolyte of BaCe0.5Zr0.3Y0.2O3-δ, J. Power Sources, 195, 3359, 10.1016/j.jpowsour.2009.12.079
Fabbri, 2010, Electrode materials: a challenge for the exploitation of protonic solid oxide fuel cells, Sci. Technol. Adv. Mater., 11, 1, 10.1088/1468-6996/11/4/044301
Vøllestad, 2019, Mixed proton and electron conducting double perovskite anodes for stable and efficient tubular proton ceramic electrolysers, Nat. Mater., 18, 752, 10.1038/s41563-019-0388-2
Rioja-Monllor, 2018, High-Performance La0.5Ba0.5Co1/3Mn1/3Fe1/3O3−δ-BaZr1−zYzO3−δ cathode composites via an exsolution mechanism for protonic ceramic fuel cells, Inorganics, 6, 83, 10.3390/inorganics6030083
Gorte, 2009, Nanostructured anodes for solid oxide fuel cells, Curr. Opin. Colloid Interface Sci., 14, 236, 10.1016/j.cocis.2009.04.006
Vohs, 2009, High-performance SOFC cathodes prepared by infiltration, Adv. Mater., 21, 943, 10.1002/adma.200802428
Kan, 2016, Trends in electrode development for next generation solid oxide fuel cells, J. Mater. Chem., 4, 17913, 10.1039/C6TA06757C
Ding, 2014, Enhancing SOFC cathode performance by surface modification through infiltration, Energy Environ. Sci., 7, 552, 10.1039/c3ee42926a
Duan, 2015, Readily processed protonic ceramic fuel cells with high performance at low temperatures, Science, 349, 1321, 10.1126/science.aab3987
Lei, 2018, A highly active hybrid catalyst modified (La0.60Sr0.40)0.95Co0.20Fe0.80O3-δ cathode for proton conducting solid oxide fuel cells, J. Power Sources, 389, 1, 10.1016/j.jpowsour.2018.03.058
Liu, 2014, Performance stability and degradation mechanism of La0.6Sr0.4Co0.2Fe0.8O3-δ cathodes under solid oxide fuel cells operation conditions, Int. J. Hydrogen Energy, 39, 15868, 10.1016/j.ijhydene.2014.03.077
Fabbri, 2008, Tailoring the chemical stability of Ba(Ce0.8-xZrx)Y0.2O3-δ protonic conductors for intermediate temperature solid oxide fuel cells (IT-SOFCs), Solid State Ionics, 179, 558, 10.1016/j.ssi.2008.04.002
Ricote, 2009, Water vapour solubility and conductivity study of the proton conductor BaCe(0.9 - x)ZrxY0.1O(3 - δ), Solid State Ionics, 180, 990, 10.1016/j.ssi.2009.03.016
Ricote, 2012, Conductivity study of dense BaCexZr(0.9-x)Y0.1O(3-δ) prepared by solid state reactive sintering at 1500 °C, Int. J. Hydrogen Energy, 37, 7954, 10.1016/j.ijhydene.2011.08.118
Tong, 2010, Cost-effective solid-state reactive sintering method for high conductivity proton conducting yttrium-doped barium zirconium ceramics, Solid State Ionics, 181, 496, 10.1016/j.ssi.2010.02.008
Madhok, 1986, Oxidation of toluene on lanthanum cobaltite perovskite (LaCoO3) catalyst, React. Kinet. Catal. Lett., 30, 185, 10.1007/BF02068164
Rehman, 2018, High-performance nanofibrous LaCoO3 perovskite cathode for solid oxide fuel cells fabricated via chemically assisted electrodeposition, J. Mater. Chem., 6, 6987, 10.1039/C7TA10701C
Ai, 2017, Highly stable Sr-free cobaltite-based perovskite cathodes directly assembled on a barrier-layer-free Y2O3-ZrO2 electrolyte of solid oxide fuel cells, ChemSusChem, 10, 993, 10.1002/cssc.201601645
Babiniec, 2014, Infiltrated lanthanum nickelate cathodes for use with BaCe0.2Zr0.7Y0.1O3-δ proton conducting electrolytes, J. Electrochem. Soc., 161, F717, 10.1149/2.037406jes
Tong, 2020, Large-area solid oxide cells with La0.6Sr0.4CoO3-δ infiltrated oxygen electrodes for electricity generation and hydrogen production, J. Power Sources, 451, 10.1016/j.jpowsour.2020.227742
Tong, 2020, Promotion of oxygen reduction and evolution by applying a nanoengineered hybrid catalyst on cobalt free electrodes for solid oxide cells, J. Mater. Chem., 8, 9039, 10.1039/D0TA02979C
Graves, 2011, RAVDAV data analysis software, v.0.9.7, 4, 1
Schichlein, 2002, Deconvolution of electrochemical impedance spectra for the identification of electrode reaction mechanisms in solid oxide fuel cells, J. Appl. Electrochem., 32, 875, 10.1023/A:1020599525160
Dailly, 2011, Electrochemical properties of perovskite and A2MO4-type oxides used as cathodes in protonic ceramic half cells, J. Solid State Electrochem., 15, 245, 10.1007/s10008-010-1188-4
Fabbri, 2011, High-performance composite cathodes with tailored mixed conductivity for intermediate temperature solid oxide fuel cells using proton conducting electrolytes, Energy Environ. Sci., 4, 4984, 10.1039/c1ee02361f
Ricote, 2012, Microstructure and performance of La0.58Sr0.4Co0.2Fe0.8O3-δ cathodes deposited on BaCe0.2Zr0.7Y0.1O3-δ by infiltration and spray pyrolysis, J. Power Sources, 209, 172, 10.1016/j.jpowsour.2012.02.090
Watanabe, 2008, Electrochemistry of La0.3Sr0.7Fe0.7Cr0.3O3-δ as an oxygen and fuel electrode for RSOFCs, Journal of the Japanese Association of Crystal Growth, 34, 240
Zhu, 2015, Interpreting equilibrium-conductivity and conductivity-relaxation measurements to establish thermodynamic and transport properties for multiple charged defect conducting ceramics, Faraday Discuss, 182, 49, 10.1039/C5FD00012B
Albrecht, 2019, Steady-state and dynamic modeling of intermediate-temperature protonic ceramic fuel cells, J. Electrochem. Soc., 166, F687, 10.1149/2.0651910jes
Strandbakke, 2015, Gd- and Pr-based double perovskite cobaltites as oxygen electrodes for proton ceramic fuel cells and electrolyser cells, Solid State Ionics, 278, 120, 10.1016/j.ssi.2015.05.014
Mahato, 2015, Progress in material selection for solid oxide fuel cell technology: a review, Prog. Mater. Sci., 72, 141, 10.1016/j.pmatsci.2015.01.001
Pergolesi, 2010, High proton conduction in grain-boundary-free yttrium-doped barium zirconate films grown by pulsed laser deposition, Nat. Mater., 9, 846, 10.1038/nmat2837
Kreuer, 2003, Proton-conducting oxides, Annu. Rev. Mater. Res., 33, 333, 10.1146/annurev.matsci.33.022802.091825
Fan, 2016, Layer-structured LiNi0.8Co0.2O2: a new triple (H+/O2-/e-) conducting cathode for low temperature proton conducting solid oxide fuel cells, J. Power Sources, 306, 369, 10.1016/j.jpowsour.2015.12.015
Li, 2018, High performing triple-conductive Pr2NiO4+δ anode for proton-conducting steam solid oxide electrolysis cell, J. Mater. Chem., 6, 18057, 10.1039/C8TA04018D
Saqib, 2019, Modification of oxygen-ionic transport barrier of BaCo0.4Zr0.1Fe0.4Y0.1O3 steam (air) electrode by impregnating samarium-doped ceria nanoparticles for proton-conducting reversible solid oxide cells mu, J. Electrochem. Soc., 166, F746, 10.1149/2.0461912jes
Zhang, 2019, Electrochemical performance and effect of moisture on Ba0.5Sr0.5Sc0.175Nb0.025Co0.8O3-δ oxide as a promising electrode for proton-conducting solid oxide fuel cells, Appl. Energy, 238, 344, 10.1016/j.apenergy.2019.01.094
Peng, 2010, Cathode processes and materials for solid oxide fuel cells with proton conductors as electrolytes, J. Mater. Chem., 20, 6218, 10.1039/c0jm00350f
Grimaud, 2012, Hydration properties and rate determining steps of the oxygen reduction reaction of perovskite-related oxides as H+-SOFC cathodes, J. Electrochem. Soc., 159, 683, 10.1149/2.101205jes
Vert, 2011, Electrochemical properties of PSFC-BCYb composites as cathodes for proton conducting solid oxide fuel cells, Fuel Cell., 11, 81, 10.1002/fuce.201000090
