Difference in the deactivation of Au catalysts during ethanol transformation when supported on ZnO and on TiO 2

Au nanoparticles of different sizes were supported by the deposition-precipitation method on two metal oxides: ZnO and TiO . The resulting catalysts were tested in the ethanol catalytic transformation reaction. Both metal oxide support materials exerted a different influence on the achieved Au parti...

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Veröffentlicht in:RSC advances 2018-02, Vol.8 (14), p.7473-7485
Hauptverfasser: Morales, M V, Asedegbega-Nieto, E, Castillejos-López, E, Bachiller-Baeza, B, Guerrero-Ruiz, A
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container_end_page 7485
container_issue 14
container_start_page 7473
container_title RSC advances
container_volume 8
creator Morales, M V
Asedegbega-Nieto, E
Castillejos-López, E
Bachiller-Baeza, B
Guerrero-Ruiz, A
description Au nanoparticles of different sizes were supported by the deposition-precipitation method on two metal oxides: ZnO and TiO . The resulting catalysts were tested in the ethanol catalytic transformation reaction. Both metal oxide support materials exerted a different influence on the achieved Au particle size as well as on the behavior of the subsequent catalyst, with regard to their initial conversion values, product distribution and stability. While TiO favors the formation of smaller nanoparticles, ZnO offers larger Au particle sizes when prepared under similar conditions. At the same time, TiO produced catalysts which displayed higher initial conversions in comparison with AuZnO catalysts, even when observing catalysts of each series with similar particle sizes. At the same time, catalysts supported on ZnO exhibited higher resistance to deactivation caused by coke formation. These results were evidenced employing different characterization techniques on both used and fresh catalyst samples. The decline in deactivation was generally accompanied by an increase in the carbon content on the catalyst's surface.
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title Difference in the deactivation of Au catalysts during ethanol transformation when supported on ZnO and on TiO 2
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