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One-pot synthesis of iron-doped ceria catalysts for tandem carbon dioxide hydrogenation

<p>Raw data set for the manuscript "One-pot synthesis of iron-doped ceria catalysts for tandem carbon dioxide hydrogenation"</p> <p>Journal: Catal. Sci. technol.</p> <p>Authors:&nbsp;Albert Gili, Maged F. Bekheet, Franziska Thimm, Benjamin Bischoff, Michael Geske, Martin Konrad, Sebastian Praetz, Christopher Schlesiger, S&ouml;ren Selve, Aleksander Gurlo, Frank Rosowski, Reinhard Schom&auml;cker</p> <p>Abstract: We report on the one-pot synthesis of inexpensive and abundant CeO<sub>2</sub> and 1.5, 4.5, and 9 mol% Fe-doped ceria (Ce<sub>1-x</sub>Fe<sub>x</sub>O<sub>2-&delta;</sub>) systems and their catalytic activity for tandem&nbsp;CO<sub>2</sub> hydrogenation. XAFS and XRD demonstrate that oxygen vacancies are generated via two mechanisms: firstly, by the substitution of Ce<sup>4+</sup> by Fe<sup>3+ </sup>in the lattice and the subsequent loss of oxygen anions. Secondly, by the partial reduction of Ce<sup>+4</sup> to Ce<sup>+3</sup>, which is enhanced by the presence of Fe. All the samples tested show high activity for CO<sub>2</sub> hydrogenation and the production of CO, CH<sub>4</sub>, and light (C<sub>2</sub>-C<sub>4</sub>) alkanes and alkenes, with the 9 mol% Fe-doped CeO<sub>2</sub> showing the best performance in terms of CO<sub>2</sub> reaction rate and product selectivity. During reaction, Fe exsolves/seggregates from the ceria, resulting in particles decorating the surface of the catalyst and increasing the reaction rates of CO<sub>2</sub>. This system is composed of two functionalities, the oxygen vacancy and the Fe, whose close vicinity results in a high selectivity toward CO and CH<sub>4</sub> detrimental to the more valuable hydrocarbons. A rather complex interplay between the two functionalities, their interface, and the particle size of the catalysts exists for this tandem reaction network on this catalytic system and deserves further studies.</p>

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