Enhanced Oxidation Kinetics in Thermochemical Cycling of CeO2 through Templated Porosity

Enhanced Oxidation Kinetics in Thermochemical Cycling of CeO2 through Templated Porosity
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DOI:
10.1021/jp309247c
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发表时间:
2013-01
影响因子:
3.7
通讯作者:
Stephen G. Rudisill;Luke J. Venstrom;Nicholas D. Petkovich;Tingting Quan;Nicholas M. Hein;D. Boman;
Stephen G. Rudisill;Luke J. Venstrom;Nicholas D. Petkovich;Tingting Quan;Nicholas M. Hein;D. Boman;
中科院分区:
化学3区
文献类型:
--
作者:
Stephen G. Rudisill;Luke J. Venstrom;Nicholas D. Petkovich;Tingting Quan;Nicholas M. Hein;D. Boman;

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Two-step thermochemical cycling was achieved using CeO2 with sub-micrometer sized macropores, allowing for substantially improved CO production at fast cycle rates when compared to nonporous CeO2. The effects of porosity, pore order, and packing density were probed by synthesizing ceria materials with different morphologies. Polymeric colloidal spheres were used as templates for the synthesis of three-dimensionally ordered macroporous (3DOM) CeO2 and nonordered macroporous (NOM) CeO2. Aggregated CeO2 nanoparticles with feature sizes similar to those in 3DOM CeO2 were prepared by fragmenting 3DOM CeO2 into its building blocks using ultrasonication. The three templated materials and nonporous, commercial CeO2 were tested in thermochemical cycles using an infrared furnace. CeO2 was reduced at ∼1200 °C, and the reduced CeO2−δ materials were reoxidized under CO2 at ∼850 °C. The high temperatures required for cycling induced changes in the morphology of the porous materials, which were characterized by electron...