Dry Reforming of Methane over Ni–Fe–Al Catalysts Prepared by Solution Combustion Synthesis
暂无分享,去创建一个
D. Murzin | P. Mäki-Arvela | Z. Vajglová | I. Simakova | Y. Aubakirov | Teija Tirri | S. Tungatarova | T. Baizhumanova | M. Martínez-Klimov | M. Zhumabek | A. Manabayeva | Valentina P. Grigor’eva
[1] C. Mullins,et al. NiAl2O4 as a beneficial precursor for Ni/Al2O3 catalysts for the dry reforming of methane , 2022, Journal of CO2 Utilization.
[2] E. Marconi,et al. Dry Reforming of Methane on Ni/Nanorod-CeO2 Catalysts Prepared by One-Pot Hydrothermal Synthesis: The Effect of Ni Content on Structure, Activity, and Stability , 2022, Reactions.
[3] S. Kawi,et al. Modification Strategies of Ni-Based Catalysts with Metal Oxides for Dry Reforming of Methane , 2022, Methane.
[4] S. Kim,et al. Exceptional stability of hydrotalcite derived spinel Mg(Ni)Al2O4 catalyst for dry reforming of methane , 2021, Catalysis Today.
[5] K. Booksh,et al. Grafted Nickel-Promoter Catalysts for Dry Reforming of Methane Identified through High-Throughput Experimentation , 2021, Applied Catalysis A: General.
[6] L. K. Keong,et al. Kinetic studies for DRM over high-performance Ni–W/Al2O3–MgO catalyst , 2021, International Journal of Hydrogen Energy.
[7] Yanglong Guo,et al. NixAl1O2-δ mesoporous catalysts for dry reforming of methane: The special role of NiAl2O4 spinel phase and its reaction mechanism , 2021 .
[8] P. N. Romano,et al. Screening of mono and bimetallic catalysts for the dry reforming of methane , 2021, Catalysis Today.
[9] Sandipan Banerjee,et al. Enhanced biogas production from Lantana camara via bioaugmentation of cellulolytic bacteria. , 2021, Bioresource technology.
[10] J. M. Serra,et al. Exploring the Stability of Fe–Ni Alloy Nanoparticles Exsolved from Double-Layered Perovskites for Dry Reforming of Methane , 2021, Catalysts.
[11] Ki‐Hyun Kim,et al. Upgrading biogas into syngas through dry reforming , 2021 .
[12] T. Fujitani,et al. Effects of rhodium catalyst support and particle size on dry reforming of methane at moderate temperatures , 2021 .
[13] L. García,et al. Aqueous phase hydrogenolysis of glycerol over Ni/Al-Fe catalysts without external hydrogen addition , 2021, Applied Catalysis B: Environmental.
[14] Fahad S. Al-Mubaddel,et al. Optimizing acido-basic profile of support in Ni supported La2O3+Al2O3 catalyst for dry reforming of methane , 2021 .
[15] Wenqi Zhong,et al. Dry reforming of methane on Ni/mesoporous-Al2O3 catalysts: Effect of calcination temperature , 2021 .
[16] Lilong Jiang,et al. Ni–Fe/Mg(Al)O alloy catalyst for carbon dioxide reforming of methane: Influence of reduction temperature and Ni–Fe alloying on coking , 2020, International Journal of Hydrogen Energy.
[17] K. Hidajat,et al. Highly Dispersed Ni/Silica by Carbonization–Calcination of a Chelated Precursor for Coke-Free Dry Reforming of Methane , 2020 .
[18] Wenjun Yan,et al. Improved Effect of Fe on the Stable NiFe/Al2O3 Catalyst in Low-Temperature Dry Reforming of Methane , 2020 .
[19] Jiaqiang Xu,et al. Dry reforming of methane over trimetallic NiFeCu alloy catalysts , 2020 .
[20] E. Novitskaya,et al. A review of solution combustion synthesis: an analysis of parameters controlling powder characteristics , 2020 .
[21] Xinggui Zhou,et al. Dry reforming of methane on Ni-Fe-MgO catalysts: Influence of Fe on carbon-resistant property and kinetics , 2020 .
[22] M. Al-Marri,et al. Ni-based nano-catalysts for the dry reforming of methane , 2020 .
[23] K. Parkhomenko,et al. Dry Reforming of Methane over Ni–Al2O3 and Ni–SiO2 Catalysts: Role of Preparation Methods , 2020, Catalysis Letters.
[24] E. Levashov,et al. Effects of Precursor Concentration in Solvent and Nanomaterials Room Temperature Aging on the Growth Morphology and Surface Characteristics of Ni–NiO Nanocatalysts Produced by Dendrites Combustion during SCS , 2019 .
[25] Xiaoqing Yuan,et al. Catalytic performance of iron-promoted nickel-based ordered mesoporous alumina FeNiAl catalysts in dry reforming of methane , 2019, Fuel Processing Technology.
[26] J. Fierro,et al. Partial Oxidation of Methane to Syngas Over Nickel-Based Catalysts: Influence of Support Type, Addition of Rhodium, and Preparation Method , 2019, Front. Chem..
[27] Md. Atiqur Rahman,et al. Preparation of NiAl2O4-Based Flexible Substrates for Metamaterials with Negative Dielectric Properties , 2018, Scientific Reports.
[28] Tae-sun Chang,et al. Effect of supports on the performance of Co-based catalysts in methane dry reforming , 2018, Journal of CO2 Utilization.
[29] M. M. Souza,et al. Effect of Doping Niobia over Ni/Al2O3 Catalysts for Methane Steam Reforming , 2018, Catalysis Letters.
[30] S. Campanaro,et al. Biogas upgrading and utilization: Current status and perspectives. , 2018, Biotechnology advances.
[31] G. Deo,et al. A potential descriptor for the CO2 hydrogenation to CH4 over Al2O3 supported Ni and Ni-based alloy catalysts , 2017 .
[32] P. Pfeifer,et al. Potential of an Alumina-Supported Ni3Fe Catalyst in the Methanation of CO2: Impact of Alloy Formation on Activity and Stability , 2017 .
[33] D. Murzin,et al. Catalytic dehydrogenation of ethanol into acetaldehyde and isobutanol using mono- and multicomponent copper catalysts , 2017 .
[34] Hyunjoon Lee,et al. Uncoupling the size and support effects of Ni catalysts for dry reforming of methane , 2017 .
[35] P. Ning,et al. Facile one-pot synthesis of highly dispersed Ni nanoparticles embedded in HMS for dry reforming of methane , 2017 .
[36] J. Szczerba,et al. Structure and microstructure evolution of hercynite spinel (Fe2+Al2O4) after annealing treatment , 2017 .
[37] G. Deo,et al. Reforming and cracking of CH4 over Al2O3 supported Ni, Ni-Fe and Ni-Co catalysts , 2017 .
[38] C. Müller,et al. Cooperativity and Dynamics Increase the Performance of NiFe Dry Reforming Catalysts. , 2017, Journal of the American Chemical Society.
[39] Jeffrey T. Miller,et al. Differences in the Nature of Active Sites for Methane Dry Reforming and Methane Steam Reforming over Nickel Aluminate Catalysts , 2016 .
[40] O. Isnard,et al. Structural, thermal and magnetic characteristics of Fe3O4/Ni3Fe composite powder obtained by mechanosynthesis-annealing route , 2015 .
[41] S. Kawi,et al. Progress in Synthesis of Highly Active and Stable Nickel-Based Catalysts for Carbon Dioxide Reforming of Methane. , 2015, ChemSusChem.
[42] V. Galvita,et al. Enhanced Carbon-Resistant Dry Reforming Fe-Ni Catalyst: Role of Fe , 2015 .
[43] T. Kulik,et al. Al3Ni2–Al composites with nanocrystalline intermetallic matrix produced by consolidation of milled powders , 2014 .
[44] E. Wolf,et al. Solution Combustion Synthesis of Nano-Crystalline Metallic Materials: Mechanistic Studies , 2013 .
[45] S. Kawi,et al. Inverse NiAl2O4 on LaAlO3–Al2O3: Unique Catalytic Structure for Stable CO2 Reforming of Methane , 2013 .
[46] A. E. Aksoylu,et al. A comparative study on the kinetics of carbon dioxide reforming of methane over Pt–Ni/Al2O3 catalyst: Effect of Pt/Ni Ratio , 2013 .
[47] M. Soltanieh,et al. On the formation of Al3Ni2 intermetallic compound by aluminothermic reduction of nickel oxide , 2011 .
[48] Jiangong Li,et al. Large scale synthesis and characterization of Ni nanoparticles by solution reduction method , 2008 .
[49] M. M. and,et al. Kinetic Analysis of Rate Data for Dry Reforming of Methane , 2007 .
[50] R. Bilbao,et al. CO2 reforming of methane over coprecipitated Ni–Al catalysts modified with lanthanum , 2004 .
[51] Yongsheng Han,et al. Effect of Preparation Temperature on the Lattice Parameter of Nickel Aluminate Spinel , 2004 .
[52] Yongsheng Han,et al. Study on NiO excess in preparing NiAl2O4 , 2004 .
[53] Gao Qing Lu,et al. A Comprehensive Study on Carbon Dioxide Reforming of Methane over Ni/γ-Al2O3 Catalysts , 1999 .
[54] S. Goto,et al. Carbon Dioxide Reforming of Methane on Supported Nickel Catalysts , 1994 .
[55] A. Pijpers,et al. Surface Characterization of Supported and Nonsupported Hydrogenation Catalysts , 1985 .
[56] Lin Zhu,et al. Preparation and characterization of NiO nanoparticles by anodic arc plasma method , 2009 .
[57] P. Weiland. Biogas production: current state and perspectives , 2009, Applied Microbiology and Biotechnology.