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Naji, M. |
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Motta, Antonella |
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Aletan, Dirar |
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Mohamed, Tarek |
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Ertürk, Emre |
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Taccardi, Nicola |
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Kononenko, Denys |
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Petrov, R. H. | Madrid |
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Alshaaer, Mazen | Brussels |
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Bih, L. |
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Casati, R. |
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Muller, Hermance |
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Kočí, Jan | Prague |
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Šuljagić, Marija |
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Kalteremidou, Kalliopi-Artemi | Brussels |
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Azam, Siraj |
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Ospanova, Alyiya |
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Blanpain, Bart |
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Ali, M. A. |
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Popa, V. |
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Rančić, M. |
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Ollier, Nadège |
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Azevedo, Nuno Monteiro |
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Landes, Michael |
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Rignanese, Gian-Marco |
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Høj, Martin
Technical University of Denmark
in Cooperation with on an Cooperation-Score of 37%
Topics
Publications (7/7 displayed)
- 2022Zinc Based High Temperature Methanol Synthesis Catalysts Enabling Direct Synthesis of Olefins and Aromatics from CO2
- 2022Zinc Based High Temperature Methanol Synthesis Catalysts Enabling Direct Synthesis of Olefins and Aromatics from CO 2
- 2020Structural dynamics of an iron molybdate catalyst under redox cycling conditions studied with in situ multi edge XAS and XRDcitations
- 2019Modeling of the molybdenum loss in iron molybdate catalyst pellets for selective oxidation of methanol to formaldehydecitations
- 2019Catalytic Hydropyrolysis of Biomass using Molybdenum Sulfide Based Catalyst. Effect of Promoterscitations
- 2018Hydrogen assisted catalytic biomass pyrolysis for green fuels. Effect of cata-lyst in the fluid bed
- 2011Flame spray synthesis of CoMo/Al2O3 hydrotreating catalystscitations
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document
Zinc Based High Temperature Methanol Synthesis Catalysts Enabling Direct Synthesis of Olefins and Aromatics from CO2
Abstract
It has been estimated that 302 million tons of plastic waste were generated worldwide in 2015 [1]. Unfortunately, there is still a need for burning plastic waste to avoid it being disposed on landfills where no value of the products is regained. When incinerating a plastic product, the fraction of the energy that went into producing the plastic can be recovered as electricity and heat. Closing the carbon loop from plastic incineration by capturing and recycling CO<sub>2</sub> to produce new plastic will minimize the climate impact of the current emissions and reduce the need for fossil resources in plastic production. Promoted Fisher-Tropsch catalysts can convert CO<sub>2</sub> and H<sub>2</sub> into ethylene and propylene with yields up to 60% [2]. This yield is close to the theoretical limit by the Anderson-Schulz-Flory distribution, which is still considered to be a limitation for the Fisher-Tropsch process. An alternative route for converting CO<sub>2</sub> into hydrocarbon products is the combination of methanol synthesis and the methanol to hydrocarbon reaction. The methanol synthesis is equilibrium limited and a strategy to overcome this is to combine a methanol synthesis catalyst with a zeolite catalyst within one reactor [3,4]. In the temperature range of 300 to 420 °C, necessary for the zeolite to be active, the traditional Cu/ZnO/Al<sub>2</sub>O<sub>3</sub> methanol synthesis catalyst cannot be used. At these temperatures, severe sintering of the metallic copper deactivates the catalyst. Furthermore, the hydrogen spill-over effect for the metallic copper results in the hydrogenation of the olefins formed in the zeolite [5]. To overcome these limitations, metal oxides capable of converting CO2 and H2 to methanol at relatively high temperatures have been synthesized and tested.