Sub-15 nm CeO2 nanowires as an efficient nonnoble metal catalyst in the room-temperature oxidation of aniline.

dc.contributor.authorSilva, Anderson Gabriel Marques da
dc.contributor.authorBatalha, Daniel Carreira
dc.contributor.authorRodrigues, Thenner Silva
dc.contributor.authorCandido, Eduardo Guimarães
dc.contributor.authorLuz, Sulusmon Cesar
dc.contributor.authorFreitas, Isabel Cristina de
dc.contributor.authorFonseca, Fabio Coral
dc.contributor.authorOliveira, Daniela Coelho de
dc.contributor.authorTaylor, Jason Guy
dc.contributor.authorTorresi, Susana Ines Cordoba de
dc.contributor.authorCamargo, Pedro Henrique Cury
dc.contributor.authorFajardo, Humberto Vieira
dc.date.accessioned2018-10-11T15:24:12Z
dc.date.available2018-10-11T15:24:12Z
dc.date.issued2018
dc.description.abstractWe described herein the facile synthesis of sub-15 nm CeO2 nanowires based on a hydrothermal method without the use of any capping/stabilizing agent, in which an oriented attachment mechanism took place during the CeO2 nanowire formation. The synthesis of sub-15 nm CeO2 nanowires could be achieved on relatively large scales (∼2.6 grams of nanowires per batch), in high yields (>94%), and at low cost. To date, there are only a limited number of successful attempts towards the synthesis of CeO2 nanowires with such small diameters, and the reported protocols are typically limited to low amounts. The nanowires displayed uniform shapes and sizes, high surface areas, an increased number of oxygen defects sites, and a high proportion of Ce3+/Ce4+ surface species. These features make them promising candidates for oxidation reactions. To this end, we employed the selective oxidation of aniline as a model transformation. The sub-15 nm CeO2 nanowires catalyzed the selective synthesis of nitrosobenzene (up to 98% selectivity) from aniline at room temperature using H2O2 as the oxidant. The effect of solvent and temperature during the catalytic reaction was investigated. We found that such parameters played an important role in the control of the selectivity. The improved catalytic activities observed for the sub-15 nm nanowires could be explained by: i) the uniform morphology with a typical dimension of 11 ± 2 nm in width, which provides higher specific surface areas relative to those of conventional catalysts; ii) the significant concentration of oxygen vacancies and high proportion of Ce3+/Ce4+ species at the surface that represent highly active sites towards oxidation reactions; iii) the crystal growth along the (110) highly catalytically active crystallographic directions, and iv) the mesoporous surface which is easily accessible by liquid substrates. The results reported herein demonstrated high activities under ambient conditions, provided novel insights into selectivities, and may inspire novel metal oxide-based catalysts with desired performancespt_BR
dc.identifier.citationSILVA, A. G. M. da. et al. Sub-15 nm CeO2 nanowires as an efficient nonnoble metal catalyst in the room-temperature oxidation of aniline. Catalysis Science & Technology, v. 8, n. 7, p. 1828-1839, fev. 2018. Disponível em: <http://pubs.rsc.org/en/content/articlepdf/2018/cy/c7cy02402a>. Acesso em: 05 abr. 2018pt_BR
dc.identifier.issn20444761
dc.identifier.urihttp://www.repositorio.ufop.br/handle/123456789/10355
dc.identifier.uri2https://pubs.rsc.org/en/content/articlepdf/2018/cy/c7cy02402apt_BR
dc.language.isoen_USpt_BR
dc.rightsrestritopt_BR
dc.titleSub-15 nm CeO2 nanowires as an efficient nonnoble metal catalyst in the room-temperature oxidation of aniline.pt_BR
dc.typeArtigo publicado em periodicopt_BR
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