Synthesis of MeOH and DME From CO2 Hydrogenation Over Commercial and Modified Catalysts

被引:14
作者
Santiago, Rafaelle G. [1 ]
Coelho, Juliana A. [1 ]
de Lucena, Sebastiao M. P. [1 ]
Musse, Ana Paula S. [2 ]
de Portilho, Marcio F. [2 ]
Rodriguez-Castellon, Enrique [3 ]
de Azevedo, Diana C. S. [1 ]
Bastos-Neto, Moises [1 ]
机构
[1] Univ Fed Ceara, Dept Chem Engn, Grp Pesquisa Separacoes Adsorcao GPSA, Fortaleza, Brazil
[2] Petrobras SA, CENPES, Cidade Univ, Rio De Janeiro, RJ, Brazil
[3] Univ Malaga, Fac Ciencias, Dept Inorgan Chem, Malaga, Spain
关键词
CO2; methanol; DME; catalysis; fixed bed; DIMETHYL ETHER DME; COMPRESSION-IGNITION ENGINES; CARBON-DIOXIDE; METHANOL SYNTHESIS; ALTERNATIVE FUEL; CONVERSION; CHALLENGES; CUO-ZNO-AL2O3; PERFORMANCE; BEHAVIOR;
D O I
10.3389/fchem.2022.903053
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Growing concern about climate change has been driving the search for solutions to mitigate greenhouse gas emissions. In this context, carbon capture and utilization (CCU) technologies have been proposed and developed as a way of giving CO2 a sustainable and economically viable destination. An interesting approach is the conversion of CO2 into valuable chemicals, such as methanol (MeOH) and dimethyl ether (DME), by means of catalytic hydrogenation on Cu-, Zn-, and Al-based catalysts. In this work, three catalysts were tested for the synthesis of MeOH and DME from CO2 using a single fixed-bed reactor. The first one was a commercial CuO/gamma-Al2O3; the second one was CuO-ZnO/gamma-Al2O3, obtained via incipient wetness impregnation of the first catalyst with an aqueous solution of zinc acetate; and the third one was a CZA catalyst obtained by the coprecipitation method. The samples were characterized by XRD, XRF, and N-2 adsorption isotherms. The hydrogenation of CO2 was performed at 25 bar, 230 degrees C, with a H-2:CO2 ratio of 3 and space velocity of 1,200 ml (g cat center dot h)(-1) in order to assess the potential of these catalysts in the conversion of CO2 to methanol and dimethyl ether. The catalyst activity was correlated to the adsorption isotherms of each reactant. The main results show that the highest CO2 conversion and the best yield of methanol are obtained with the CZACP catalyst, very likely due to its higher adsorption capacity of H-2. In addition, although the presence of zinc oxide reduces the textural properties of the porous catalyst, CZAWI showed higher CO2 conversion than commercial catalyst CuO/gamma-Al2O3.
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页数:11
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