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Honeycomb monolithic design to enhance the performance of Ni-based catalysts for dry reforming of methane

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URI: http://hdl.handle.net/10498/30065

DOI: 10.1016/J.CATTOD.2020.07.030

ISSN: 0920-5861

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Author/s
Agueniou, Fazia; Vidal Muñoz, HilarioAuthority UCA; Yeste Siguenza, María del PilarAuthority UCA; Hernández Garrido, Juan CarlosAuthority UCA; Cauqui López, Miguel ÁngelAuthority UCA; Rodríguez-Izquierdo Gil, José MaríaAuthority UCA; Calvino Gámez, José JuanAuthority UCA; Gatica Casas, José ManuelAuthority UCA
Date
2022-01-01
Department
Ciencia de los Materiales e Ingeniería Metalúrgica y Química Inorgánica
Source
Catalysis Today, 383 (2022) 226-235
Abstract
Supported Ni catalysts (4.5 wt%) using a Ce-Zr oxide (18/82 molar ratio and a ceria-rich surface) depicting advanced redox properties, were deposited by washcoating over cordierite honeycombs (230 and 400 cpsi). FIB-STEM unveiled nanostructure details otherwise undistinguishable by conventional techniques. The catalytic performance was evaluated in the dry reforming of methane at 700-900 ºC, using a CH4:CO2 1:1 feedstock, and exploring high Weight Hourly Space Velocity (115-346 L g-1 h-1). The structured catalysts exhibited better performance than the corresponding powders, reaching values close to thermodynamic limits for both reactants conversion and H2/CO ratio, from 750 ºC, and no deactivation was observed in prolonged experiments (24-48 hours). This was related to both the high catalyst efficiency after being deposited with low loading on the cordierite and the intrinsic advantages of the monolithic reactor, like preventing from the kinetic control that operates in powdered samples under high WHSV or limiting the deactivation.
Subjects
Nickel; ceria-zirconia; dry reforming of methane; honeycomb cordierite; FID-(S)TEM
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Attribution-NonCommercial-NoDerivatives 4.0 Internacional
This work is under a Creative Commons License Attribution-NonCommercial-NoDerivatives 4.0 Internacional

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