Unveiling the potential of surfactant Pluronic-P123 application during the synthesis of Ni-hydrotalcite-derived catalysts for low-temperature CO2 methanation: A novel approach
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A. Travert | M. Ziąbka | P. Da Costa | M. Motak | F. Thibault-Starzyk | F. Azzolina-Jury | B. Samojeden | Minh Nguyen-Quang
[1] P. Da Costa,et al. On the influence of the preparation routes of NiMgAl-mixed oxides derived from hydrotalcite on their CO2 methanation catalytic activities , 2022, International Journal of Hydrogen Energy.
[2] N. Elbashir,et al. Highly stable and coke-resistant Zn-modified Ni-Mg-Al hydrotalcite derived catalyst for dry reforming of methane: Synergistic effect of Ni and Zn , 2022, Fuel.
[3] Jianjun Chen,et al. Insight into the role of Fe on catalytic performance over the hydrotalcite-derived Ni-based catalysts for CO2 methanation reaction , 2021, International Journal of Hydrogen Energy.
[4] M. Rønning,et al. Co-Precipitated Ni-Mg-Al Hydrotalcite-Derived Catalyst Promoted with Vanadium for CO2 Methanation , 2021, Molecules.
[5] Yasin Orooji,et al. Anti-coking freeze-dried NiMgAl catalysts for dry and steam reforming of methane , 2021 .
[6] K. Świerczek,et al. Investigation of Cu promotion effect on hydrotalcite-based nickel catalyst for CO2 methanation , 2021 .
[7] Y. Taufiq-Yap,et al. Enhanced CO2 methanation at mild temperature on Ni/zeolite from kaolin: effect of metal–support interface , 2021, RSC advances.
[8] Zhenhua Li,et al. Ni-based catalysts derived from layered-double-hydroxide nanosheets for efficient photothermal CO2 reduction under flow-type system , 2021, Nano Research.
[9] Nadine Bette,et al. Methanation of CO2 and CO by (Ni,Mg,Al)-Hydrotalcite-Derived and Related Catalysts with Varied Magnesium and Aluminum Oxide Contents , 2021 .
[10] P. Da Costa,et al. Vanadium promoted Ni(Mg,Al)O hydrotalcite-derived catalysts for CO2 methanation , 2021 .
[11] A. Borgna,et al. Enhanced performance and selectivity of CO2 methanation over phyllosilicate structure derived Ni-Mg/SBA-15 catalysts , 2021 .
[12] N. Charisiou,et al. Bimetallic Ni-Based Catalysts for CO2 Methanation: A Review , 2020, Nanomaterials.
[13] G. Słowik,et al. Effects of support composition on the performance of nickel catalysts in CO2 methanation reaction , 2020 .
[14] Jie Zhu,et al. Promoting effect of Fe on supported Ni catalysts in CO2 methanation by in situ DRIFTS and DFT study , 2020 .
[15] Rui Li,et al. CO2 methanation over NiCe/Al2O3 catalysts: effect of nickel loading and particle size on catalytic performance , 2020 .
[16] Chao Sun,et al. On the effect of yttrium promotion on Ni-layered double hydroxides-derived catalysts for hydrogenation of CO2 to methane , 2020 .
[17] M. Mazzotti,et al. The Role of Carbon Capture and Utilization, Carbon Capture and Storage, and Biomass to Enable a Net-Zero-CO2 Emissions Chemical Industry , 2020, Industrial & Engineering Chemistry Research.
[18] A. Rodrigues,et al. CO2 Methanation over Hydrotalcite-Derived Nickel/Ruthenium and Supported Ruthenium Catalysts , 2019, Catalysts.
[19] Luhui Wang,et al. Highly Loaded Mesoporous Ni–La2O3 Catalyst Prepared by Colloidal Solution Combustion Method for CO2 Methanation , 2019, Catalysts.
[20] Ning Rui,et al. Structural effect of Ni/ZrO2 catalyst on CO2 methanation with enhanced activity , 2019, Applied Catalysis B: Environmental.
[21] Sung Su Kim,et al. Reaction Mechanism and Catalytic Impact of Ni/CeO2–x Catalyst for Low-Temperature CO2 Methanation , 2019, Industrial & Engineering Chemistry Research.
[22] M. Valenzuela,et al. High Selectivity and Stability of Nickel Catalysts for CO2 Methanation: Support Effects , 2018, Catalysts.
[23] M. Rønning,et al. Effect of low loading of yttrium on Ni-based layered double hydroxides in CO2 reforming of CH4 , 2018, Reaction Kinetics, Mechanisms and Catalysis.
[24] M. Rønning,et al. Dry reforming of methane over Zr- and Y-modified Ni/Mg/Al double-layered hydroxides , 2018, Catalysis Communications.
[25] Zhibing Zhang,et al. Hydrogenation of CO2 to Formate with H2 : Transition Metal Free Catalyst Based on a Lewis Pair. , 2018, Angewandte Chemie.
[26] P. Glatzel,et al. Examination of the influence of La promotion on Ni state in hydrotalcite-derived catalysts under CO2 methanation reaction conditions: Operando X-ray absorption and emission spectroscopy investigation , 2018, Applied Catalysis B: Environmental.
[27] F. Gallucci,et al. An in-situ IR study on the adsorption of CO2 and H2O on hydrotalcites , 2018 .
[28] G. Centi,et al. Hydrotalcite based Ni–Fe/(Mg, Al)Ox catalysts for CO2 methanation – tailoring Fe content for improved CO dissociation, basicity, and particle size , 2018 .
[29] C. Henriques,et al. Micro- and mesoporous supports for CO2 methanation catalysts : a comparison between SBA-15, MCM-41 and USY zeolite , 2018 .
[30] Dori Yosef Kalai,et al. The effect of la on the hydrotalcite derived Ni catalysts for dry reforming of methane , 2017 .
[31] I. Pálinkó,et al. Mixed Oxides Without Added Noble Metals Derived from Layered Double Hydroxides of the Hydrotalcite Type in the Hydrodechlorination Reaction of Trichloroethylene , 2017, Catalysis Letters.
[32] Qing Liu,et al. One-pot synthesis of NiO/SBA-15 monolith catalyst with a three-dimensional framework for CO2 methanation , 2017 .
[33] P. Costa,et al. The influence of lanthanum incorporation method on the performance of nickel-containing hydrotalcite-derived catalysts in CO2 methanation reaction , 2017, Catalysis Today.
[34] Hyunjoon Lee,et al. Uncoupling the size and support effects of Ni catalysts for dry reforming of methane , 2017 .
[35] M. Ferraro,et al. Supported Catalysts for CO2 Methanation: A Review , 2017 .
[36] Xuzhuang Yang,et al. Metal (Fe, Co, Ce or La) doped nickel catalyst supported on ZrO2 modified mesoporous clays for CO and CO2 methanation , 2016 .
[37] Patrick Da Costa,et al. Novel Ni-La-hydrotalcite derived catalysts for CO2 methanation , 2016 .
[38] Xin Wang,et al. Catalysis mechanisms of CO2 and CO methanation , 2016 .
[39] R. Schlögl,et al. Reverse Water-Gas Shift or Sabatier Methanation on Ni(110)? Stable Surface Species at Near-Ambient Pressure. , 2016, Journal of the American Chemical Society.
[40] Binglian Liang,et al. Catalytic carbon dioxide hydrogenation to methane: A review of recent studies , 2016 .
[41] M. Götz,et al. Review on methanation – From fundamentals to current projects , 2016 .
[42] G. Deo,et al. Effect of support on the catalytic activity of supported Ni–Fe catalysts for the CO2 methanation reaction , 2016 .
[43] P. Costa,et al. Ni-containing Ce-promoted hydrotalcite derived materials as catalysts for methane reforming with carbon dioxide at low temperature – On the effect of basicity , 2015 .
[44] W. Chu,et al. A Study of CO2 Methanation over Ni-Based Catalysts Supported by CNTs with Various Textural Characteristics , 2015 .
[45] L. Magistri,et al. Methanation of carbon dioxide on Ru/Al2O3 and Ni/Al2O3 catalysts at atmospheric pressure: Catalysts activation, behaviour and stability , 2015 .
[46] Peiyu Wang,et al. Nitrogen-containing activated carbon fibers derived from silk fibers for CO2 capture , 2015 .
[47] Dianqing Li,et al. Supported catalysts based on layered double hydroxides for catalytic oxidation and hydrogenation: general functionality and promising application prospects. , 2015, Chemical Society reviews.
[48] Arshad Ahmad,et al. CO2 methanation over heterogeneous catalysts: recent progress and future prospects , 2015 .
[49] D. Ferri,et al. DRIFTS study of a commercial Ni/γ-Al2O3 CO methanation catalyst , 2015 .
[50] Gongxuan Lu,et al. Enhancing catalytic activity and stability for CO2 methanation on Ni@MOF-5 via control of active species dispersion. , 2015, Chemical communications.
[51] Lei He,et al. Unique catalysis of Ni-Al hydrotalcite derived catalyst in CO2 methanation: cooperative effect between Ni nanoparticles and a basic support , 2014 .
[52] Fereshteh Meshkani,et al. Preparation of highly active nickel catalysts supported on mesoporous nanocrystalline γ-Al2O3 for CO2 methanation , 2014 .
[53] Shudong Wang,et al. Insight into the reaction route of CO2 methanation: Promotion effect of medium basic sites , 2014 .
[54] T. Abe,et al. Density functional theory analysis of methanation reaction of CO2 on Ru nanoparticle supported on TiO2 (1 0 1) , 2014 .
[55] Atsushi Takagaki,et al. Characterization, synthesis and catalysis of hydrotalcite-related materials for highly efficient materials transformations , 2013 .
[56] Suojiang Zhang,et al. Catalytic Methanation of CO and CO2 in Coke Oven Gas over Ni–Co/ZrO2–CeO2 , 2013 .
[57] D. Tichit,et al. Acido-basic and catalytic properties of transition-metal containing Mg–Al hydrotalcites and their corresponding mixed oxides , 2012 .
[58] Pragya Nema,et al. An overview of global climate changing in current scenario and mitigation action , 2012 .
[59] Ryuji Kikuchi,et al. Ni/CeO2 catalysts with high CO2 methanation activity and high CH4 selectivity at low temperatures , 2012 .
[60] Dermot O'Hare,et al. Recent advances in the synthesis and application of layered double hydroxide (LDH) nanosheets. , 2012, Chemical reviews.
[61] Guangwen Xu,et al. Enhanced Investigation of CO Methanation over Ni/Al2O3 Catalysts for Synthetic Natural Gas Production , 2012 .
[62] Antoine Beuls,et al. Methanation of CO2: Further insight into the mechanism over Rh/gamma-Al2O3 catalyst , 2012 .
[63] Wang Wei,et al. Methanation of carbon dioxide: an overview , 2011 .
[64] N. Kruse,et al. Catalytic CO2 Hydrogenation on Nickel: Novel Insight by Chemical Transient Kinetics† , 2011 .
[65] B. Smit,et al. Carbon dioxide capture: prospects for new materials. , 2010, Angewandte Chemie.
[66] G. Centi,et al. Opportunities and prospects in the chemical recycling of carbon dioxide to fuels , 2009 .
[67] Eric W. McFarland,et al. A highly dispersed Pd-Mg/SiO2 catalyst active for methanation of CO2 , 2009 .
[68] Chunshan Song. Global challenges and strategies for control, conversion and utilization of CO2 for sustainable development involving energy, catalysis, adsorption and chemical processing , 2006 .
[69] M. A. Lansarin,et al. Effect of composition and thermal pretreatment on properties of Ni–Mg–Al catalysts for CO2 reforming of methane , 2006 .
[70] J. Rasko,et al. Adsorption and surface reactions of acetaldehyde on alumina-supported noble metal catalysts , 2005 .
[71] C. A. Henriques,et al. Influence of Ni content on physico-chemical characteristics of Ni, Mg, Al-Hydrotalcite like compounds , 2003 .
[72] Philippe Bazin,et al. Studying the NOx-trap mechanism over a Pt-Rh/Ba/Al2O3 catalyst by operando FT-IR spectroscopy , 2003 .
[73] G. Ghiotti,et al. Investigation of Acid−Base Properties of Catalysts Obtained from Layered Double Hydroxides , 2000 .
[74] N. Ichikuni,et al. Promoting effect of NiAl2O4 for supported Ni particles on sprayed Ni/Al2O3 catalysts , 2000 .
[75] G. Ghiotti,et al. Synthesis and characterization of sol–gel Mg/Al and Ni/Al layered double hydroxides and comparison with co-precipitated samples , 2000 .
[76] Jennifer L. Zilka,et al. Carbon Dioxide Conversions in Microreactors , 2000 .
[77] E. Iglesia,et al. Structure and Surface and Catalytic Properties of Mg-Al Basic Oxides , 1998 .
[78] Angelo Vaccari,et al. Preparation and catalytic properties of cationic and anionic clays , 1998 .
[79] F. Medina,et al. Activation under oxidizing and reducing atmospheres of Ni-containing layered double hydroxides , 1997 .
[80] Jacob A. Moulijn,et al. Mitigation of CO2 by Chemical Conversion: Plausible Chemical Reactions and Promising Products , 1996 .
[81] Jean-Claude Lavalley,et al. Infrared spectrometric studies of the surface basicity of metal oxides and zeolites using adsorbed probe molecules , 1996 .
[82] M. Gazzano,et al. Structure and reactivity of high-surface-area Ni/Mg/Al mixed oxides , 1995 .
[83] D. King,et al. Adsorption and decomposition of formic acid on Ni{110} , 1995 .
[84] A. Corma. Determination of base properties of hydrotalcites: Condensation of benzaldehyde with ethyl acetoacetate , 1992 .
[85] Fabrizio Cavani,et al. Hydrotalcite-type anionic clays: Preparation, properties and applications. , 1991 .
[86] G. Busca,et al. Low-temperature CO2 adsorption on metal oxides: spectroscopic characterization of some weakly adsorbed species , 1991 .
[87] C. H. Bartholomew,et al. Hydrogenation of CO2 on group VIII metals: IV. Specific activities and selectivities of silica-supported Co, Fe, and Ru , 1984 .
[88] Shigeo Miyata. Anion-Exchange Properties of Hydrotalcite-Like Compounds , 1983 .
[89] C. H. Bartholomew,et al. Hydrogenation of CO2 on group VIII metals: I. Specific activity of NiSiO2 , 1981 .
[90] J. Dumesic,et al. Surface, catalytic and magnetic properties of small iron particles: I. Preparation and characterization of samples , 1975 .
[91] H. J. Bernstein,et al. THE VIBRATIONAL SPECTRA OF THE FORMATE, ACETATE, AND OXALATE IONS , 1956 .
[92] G. Janz,et al. Space‐Time Yield and Reaction Rate , 1955 .
[93] C. Cochran,et al. Alumina Surface Area Measurements , 1950 .
[94] Y. Dias,et al. Carbon dioxide methanation over Ni-Cu/SiO2 catalysts , 2020, Energy Conversion and Management.
[95] Y. Schuurman,et al. Understanding deactivation processes during bio-syngas methanation: DRIFTS and SSITKA experiments and kinetic modeling over Ni/Al2O3 catalysts , 2018 .
[96] R. Sisto,et al. Nickel supported on YSZ: The effect of Ni particle size on the catalytic activity for CO 2 methanation , 2018 .
[97] F. Graf,et al. Renewable Power-to-Gas: A technological and economic review , 2016 .
[98] I. Fatimah,et al. Synthesis and Characterization of Hydrotalcite at Different Mg/Al Molar Ratios☆ , 2015 .
[99] K. Hadjiivanov. Identification and Characterization of Surface Hydroxyl Groups by Infrared Spectroscopy , 2014 .
[100] Z. Xu,et al. Layered Double Hydroxides (LDH) , 2013 .
[101] Klaus Müller,et al. Sabatier based CO2-methanation of Flue Gas Emitted by Conventional Power Plants , 2013 .
[102] G. Busca,et al. Infrared spectroscopic identification of species arising from reactive adsorption of carbon oxides on metal oxide surfaces , 1982 .