From CO2 to DME: Enhancement through Heteropoly Acids from a Catalyst Screening and Stability Study
暂无分享,去创建一个
I. Krossing | Anna Fischer | Dustin Kubas | Jennifer Maria Beck | Erdogan Kasisari | T. Schätzler | Anita Becherer
[1] I. Krossing,et al. Is Direct DME Synthesis Superior to Methanol Production in Carbon Dioxide Valorization? From Thermodynamic Predictions to Experimental Confirmation , 2023, ACS Catalysis.
[2] N. Oktar,et al. Heteropolyacid Incorporated Bifunctional Core-Shell Catalysts for Dimethyl Ether Synthesis from Carbon Dioxide/Syngas , 2022, Catalysts.
[3] I. Wysocka,et al. A Review on Deactivation and Regeneration of Catalysts for Dimethyl Ether Synthesis , 2022, Energies.
[4] F. Studt,et al. Reactivity of Surface Lewis and Brønsted Acid Sites in Zeolite Catalysis: A Computational Case Study of DME Synthesis Using H-SSZ-13 , 2022, The Journal of Physical Chemistry C.
[5] U. Arnold,et al. Continuous Synthesis of Oxymethylene Ether Fuels from Dimethyl Ether in a Heterogeneously Catalyzed Liquid Phase Process , 2022, Chemie Ingenieur Technik.
[6] I. Krossing,et al. Enhancement of Methanol Synthesis by Oxidative Fluorination of Cu/ZnO Catalysts—Insights from Surface Analyses , 2021, ACS Catalysis.
[7] P. Styring,et al. Synthetic Fuels Based on Dimethyl Ether as a Future Non-Fossil Fuel for Road Transport From Sustainable Feedstocks , 2021, Frontiers in Energy Research.
[8] J. Fierro,et al. Direct Synthesis of Dimethyl Ether from CO2: Recent Advances in Bifunctional/Hybrid Catalytic Systems , 2021, Catalysts.
[9] E. Catizzone,et al. MFI vs. FER zeolite during methanol dehydration to dimethyl ether: The crystal size plays a key role , 2021 .
[10] J. L. García Fierro,et al. Direct Synthesis of Dimethyl Ether from Syngas on Bifunctional Hybrid Catalysts Based on Supported H3PW12O40 and Cu-ZnO(Al): Effect of Heteropolyacid Loading on Hybrid Structure and Catalytic Activity , 2020, Catalysts.
[11] J. Rodríguez-Mirasol,et al. ZSM-5-decorated CuO/ZnO/ZrO2 fibers as efficient bifunctional catalysts for the direct synthesis of DME from syngas , 2020 .
[12] K. Bizon,et al. Enhancement of the Direct Synthesis of Dimethyl Ether (DME) from Synthesis Gas by Macro- and Microstructuring of the Catalytic Bed , 2020, Catalysts.
[13] F. Studt,et al. Enhanced Direct Dimethyl Ether Synthesis from CO2-Rich Syngas with Cu/ZnO/ZrO2 Catalysts Prepared by Continuous Co-Precipitation , 2020, Catalysts.
[14] E. Catizzone,et al. CuZnZr-Zeolite Hybrid Grains for DME Synthesis: New Evidence on the Role of Metal-Acidic Features on the Methanol Conversion Step , 2020, Catalysts.
[15] M. Ojeda,et al. Effects of support and reaction pressure for the synthesis of dimethyl ether over heteropolyacid catalysts , 2020, Scientific Reports.
[16] R. Karcz,et al. Direct hydrogenation of CO2 to dimethyl ether (DME) over hybrid catalysts containing CuO/ZrO2 as a metallic function and heteropolyacids as an acidic function , 2020, Reaction Kinetics, Mechanisms and Catalysis.
[17] E. Catizzone,et al. Interaction effects between CuO-ZnO-ZrO2 methanol phase and zeolite surface affecting stability of hybrid systems during one-step CO2 hydrogenation to DME , 2020 .
[18] N. V. Vlasenko,et al. Insight into the active site nature of zeolite H-BEA for liquid phase etherification of isobutylene with ethanol , 2019, RSC advances.
[19] Xinhua Liang,et al. Effects of mixing methods of bifunctional catalysts on catalyst stability of DME synthesis via CO2 hydrogenation , 2019, Carbon Resources Conversion.
[20] Hailong Li,et al. Thermodynamic Analysis of Chemical and Phase Equilibria in CO2 Hydrogenation to Methanol, Dimethyl Ether, and Higher Alcohols , 2018 .
[21] C. Cannilla,et al. The influence of different promoter oxides on the functionality of hybrid CuZn-ferrierite systems for the production of DME from CO2-H2 mixtures , 2017 .
[22] F. Kapteijn,et al. Challenges in the Greener Production of Formates/Formic Acid, Methanol, and DME by Heterogeneously Catalyzed CO2 Hydrogenation Processes , 2017, Chemical reviews.
[23] E. Gaigneaux,et al. Boron Nitride: A Support for Highly Active Heteropolyacids in the Methanol-to-DME Reaction , 2017 .
[24] E. Catizzone,et al. Direct CO2-to-DME hydrogenation reaction: New evidences of a superior behaviour of FER-based hybrid systems to obtain high DME yield , 2017 .
[25] C. Cannilla,et al. DME production by CO2 hydrogenation: Key factors affecting the behaviour of CuZnZr/ferrierite catalysts , 2017 .
[26] P. Pfeifer,et al. Catalyst Deactivation During One-Step Dimethyl Ether Synthesis from Synthesis Gas , 2017, Catalysis Letters.
[27] R. Schlögl,et al. Methanol Synthesis from Industrial CO2 Sources: A Contribution to Chemical Energy Conversion , 2017, Catalysis Letters.
[28] E. Catizzone,et al. Catalytic features of CuZnZr–zeolite hybrid systems for the direct CO2-to-DME hydrogenation reaction , 2016 .
[29] C. Mota,et al. Synthesis of methanol and dimethyl ether from the CO2 hydrogenation over Cu·ZnO supported on Al2O3 and Nb2O5 , 2016 .
[30] P. Pfeifer,et al. Direct dimethyl ether synthesis from synthesis gas: The influence of methanol dehydration on methanol synthesis reaction , 2016 .
[31] Hong Liu,et al. Study on combustion and emission of a dimethyl ether-diesel dual-fuel premixed charge compression ignition combustion engine with LPG (liquefied petroleum gas) as ignition inhibitor , 2016 .
[32] I. Kozhevnikov,et al. Dehydration of Methanol to Dimethyl Ether over Heteropoly Acid Catalysts: The Relationship between Reaction Rate and Catalyst Acid Strength , 2015 .
[33] M. Beller,et al. Using carbon dioxide as a building block in organic synthesis , 2015, Nature Communications.
[34] C. Cannilla,et al. Multifunctionality of Cu–ZnO–ZrO2/H-ZSM5 catalysts for the one-step CO2-to-DME hydrogenation reaction , 2015 .
[35] V. Valtchev,et al. The role of external acid sites of ZSM-5 in deactivation of hybrid CuZnAl/ZSM-5 catalyst for direct dimethyl ether synthesis from syngas , 2014 .
[36] Y. Yoneyama,et al. Catalysis Chemistry of Dimethyl Ether Synthesis , 2014 .
[37] A. Schaadt,et al. The Influence of the Precipitation/Ageing Temperature on a Cu/ZnO/ZrO2 Catalyst for Methanol Synthesis from H2 and CO2 , 2014 .
[38] J. Fierro,et al. TiO2-supported heteropoly acids for low-temperature synthesis of dimethyl ether from methanol , 2014 .
[39] G. Trunfio,et al. How oxide carriers control the catalytic functionality of the Cu–ZnO system in the hydrogenation of CO2 to methanol , 2013 .
[40] G. Trunfio,et al. Effects of oxide carriers on surface functionality and process performance of the Cu–ZnO system in the synthesis of methanol via CO2 hydrogenation , 2013 .
[41] I. Krossing,et al. Novel Cu/ZnO‐Based Catalysts for the Synthesis of Methanol by CO2 Hydrogenation , 2012 .
[42] K. Jun,et al. Coproduction of Methanol and Dimethyl Ether from Biomass-Derived Syngas on a Cu−ZnO−Al2O3/γ-Al2O3 Hybrid Catalyst , 2008 .
[43] Francesco Frusteri,et al. Synthesis, characterization and activity pattern of Cu–ZnO/ZrO2 catalysts in the hydrogenation of carbon dioxide to methanol , 2007 .
[44] J. M. Arandes,et al. Kinetic Modeling of Dimethyl Ether Synthesis in a Single Step on a CuO−ZnO−Al2O3/γ-Al2O3 Catalyst , 2007 .