Selection of iron-based oxygen carriers for two-step solar thermochemical splitting of carbon dioxide
暂无分享,去创建一个
Bachirou Guene Lougou | Dazhi Yang | Hao Zhang | Xiaomi Zhang | Qinghui Pan | Yong Shuai | Fuqiang Wang
[1] Youjun Lu,et al. Solar-driven H2O/CO2 conversion to fuels via two-step electro-thermochemical cycle in a solid oxide electrochemical cell , 2022, Energy Conversion and Management.
[2] Bachirou Guene Lougou,et al. Highly-selective CO2 conversion through single oxide CuO enhanced NiFe2O4 thermal catalytic activity , 2022, Sustainable Materials and Technologies.
[3] A. Constantinou,et al. A Comprehensive Review on Two-Step Thermochemical Water Splitting for Hydrogen Production in a Redox Cycle , 2022, Energies.
[4] E. Coker,et al. A Thermogravimetric Temperature-Programmed Thermal Redox Protocol for Rapid Screening of Metal Oxides for Solar Thermochemical Hydrogen Production , 2022, Frontiers in Energy Research.
[5] Chi‐Hwa Wang,et al. Mesoporous silica-encaged ultrafine ceria–nickel hydroxide nanocatalysts for solar thermochemical dry methane reforming , 2022, Applied Physics Letters.
[6] Peter Lund,et al. Mutual Conversion of CO-CO2 on a Perovskite Fuel Electrode with Endogenous Alloy Nanoparticles for Reversible Solid Oxide Cells. , 2022, ACS applied materials & interfaces.
[7] Bachirou Guene Lougou,et al. Effects of foam structure on thermochemical characteristics of porous-filled solar reactor , 2022, Energy.
[8] J. Lilliestam,et al. Drop-in fuels from sunlight and air , 2021, Nature.
[9] Fuqiang Wang,et al. Efficient radiative cooling coating with biomimetic human skin wrinkle structure , 2021 .
[10] I. Dincer,et al. Assessing the potential of thermo-chemical water splitting cycles: A bridge towards clean and sustainable hydrogen generation , 2021 .
[11] Chi‐Hwa Wang,et al. Solar-driven thermochemical redox cycles of ZrO2 supported NiFe2O4 for CO2 reduction into chemical energy , 2021 .
[12] Xiaoze Du,et al. CaCo0.05Mn0.95O3-δ: A Promising Perovskite Solid Solution for Solar Thermochemical Energy Storage. , 2021, ACS applied materials & interfaces.
[13] Bachirou Guene Lougou,et al. Current technology development for CO2 utilization into solar fuels and chemicals: A review , 2020, Journal of Energy Chemistry.
[14] M. Mehrpooya,et al. A review on hydrogen production thermochemical water-splitting cycles , 2020 .
[15] A. Gupta,et al. Isothermal Splitting of CO2 to CO Using Cobalt-Ferrite Redox Looping , 2020, Journal of Energy Resources Technology.
[16] Z. Gu,et al. Chemical‐Looping Conversion of Methane: A Review , 2020 .
[17] Lei Wang,et al. Experimental study on the high performance of Zr doped LaCoO3 for solar thermochemical CO production , 2020, Chemical Engineering Journal.
[18] Zhanlong Song,et al. Hydrogen production via a two-step water splitting thermochemical cycle based on metal oxide – A review , 2020, Applied Energy.
[19] Mazlan Abdul Wahid,et al. Hydrogen from solar energy, a clean energy carrier from a sustainable source of energy , 2020, International Journal of Energy Research.
[20] Bachirou Guene Lougou,et al. Effects of multilayer porous ceramics on thermochemical energy conversion and storage efficiency in solar dry reforming of methane reactor , 2020 .
[21] Alberto de la Calle,et al. Experimental, computational and thermodynamic studies in perovskites metal oxides for thermochemical fuel production: A review , 2020 .
[22] Xing Zhu,et al. Chemical Looping Conversion of Gaseous and Liquid Fuels for Chemical Production: A Review , 2020, Energy & Fuels.
[23] Hwai Chyuan Ong,et al. A state-of-the-art review on thermochemical conversion of biomass for biofuel production: A TG-FTIR approach , 2020 .
[24] I. Dincer,et al. A review and comparative evaluation of thermochemical water splitting cycles for hydrogen production , 2020 .
[25] Muhammad Umair Ali,et al. Concentration-Dependent Solar Thermochemical CO2/H2O Splitting Performance by Vanadia–Ceria Multiphase Metal Oxide Systems , 2020, Research.
[26] C. Sattler,et al. Solar fuels production: Two-step thermochemical cycles with cerium-based oxides , 2019, Progress in Energy and Combustion Science.
[27] Laijun Wang,et al. Preparation and characterization of bimetallic Ni–Ir/C catalysts for HI decomposition in the thermochemical water-splitting iodine–sulfur process for hydrogen production , 2019, International Journal of Hydrogen Energy.
[28] S. Abanades,et al. A Review of Solar Thermochemical CO2 Splitting Using Ceria-Based Ceramics With Designed Morphologies and Microstructures , 2019, Front. Chem..
[29] Bachirou Guene Lougou,et al. Numerical Investigation of Carbon Deposition Behavior in Ni/Al2O3-Based Catalyst Porous-Filled Solar Thermochemical Reactor for the Dry Reforming of Methane Process , 2019, Industrial & Engineering Chemistry Research.
[30] Shiyi Chen,et al. Chemical looping dry reforming of methane with hydrogen generation on Fe2O3/Al2O3 oxygen carrier , 2019, Chemical Engineering Journal.
[31] S. Abanades,et al. Stepwise Solar Methane Reforming and Water‐Splitting via Lattice Oxygen Transfer in Iron and Cerium Oxides , 2019, Energy Technology.
[32] M. Romero,et al. Solar Energy on Demand: A Review on High Temperature Thermochemical Heat Storage Systems and Materials. , 2019, Chemical reviews.
[33] Ruming Pan,et al. Analysis of Two‐Step Solar Thermochemical Looping Reforming of Fe 3 O 4 Redox Cycles for Synthesis Gas Production , 2019, Energy Technology.
[34] Ruming Pan,et al. Analysis of thermal transport and fluid flow in high-temperature porous media solar thermochemical reactor , 2018, Solar Energy.
[35] R. Xiao,et al. Enhanced hydrogen production performance through controllable redox exsolution within CoFeAlOx spinel oxygen carrier materials , 2018 .
[36] C. Estrada,et al. An overview of the solar thermochemical processes for hydrogen and syngas production: Reactors, and facilities , 2017 .
[37] A. Steinfeld,et al. Solar thermochemical splitting of CO2 into separate streams of CO and O2 with high selectivity, stability, conversion, and efficiency , 2017 .
[38] S. Bhavsar,et al. Iron–Nickel Alloys for Carbon Dioxide Activation by Chemical Looping Dry Reforming of Methane , 2016 .
[39] R. Banerjee,et al. A review of solar thermochemical processes , 2016 .
[40] Zhihua Wang,et al. A novel photo-thermochemical cycle for the dissociation of CO2 using solar energy , 2015 .
[41] Can Li,et al. Two-step thermochemical cycles for CO2 splitting on Zr-doped cobalt ferrite supported on silica , 2015 .
[42] S. Abanades,et al. Solar thermochemical conversion of CO2 into fuel via two-step redox cycling of non-stoichiometric Mn-containing perovskite oxides , 2015 .
[43] Rongming Wang,et al. Phase formations and magnetic properties of single crystal nickel ferrite (NiFe2O4) with different morphologies , 2015 .
[44] C. Sattler,et al. A review on solar thermal syngas production via redox pair-based water/carbon dioxide splitting thermochemical cycles , 2015 .
[45] C. Detavernier,et al. CeO2-modified Fe2O3 for CO2 utilization via chemical looping , 2013 .
[46] W. Chueh,et al. High-Flux Solar-Driven Thermochemical Dissociation of CO2 and H2O Using Nonstoichiometric Ceria , 2010, Science.
[47] Aldo Steinfeld,et al. Hydrogen production by hydrogen sulfide splitting using concentrated solar energy – Thermodynamics and economic evaluation , 2010 .
[48] Tatsuya Kodama,et al. Thermochemical hydrogen production by a redox system of ZrO2-supported Co(II)-ferrite , 2004 .
[49] A. Weimer,et al. A Thermochemical Study of Iron Aluminate-Based Materials: A Preferred Class for Isothermal Water Splitting , 2022, Energy & Environmental Science.
[50] K. Zhao,et al. Evaluation of multi-cycle performance of chemical looping dry reforming using CO2 as an oxidant with Fe–Ni bimetallic oxides , 2016 .
[51] M. Broda,et al. Development of MgAl2O4-stabilized, Cu-doped, Fe2O3-based oxygen carriers for thermochemical water-splitting , 2016 .