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Tuning the Integration Rate of Ce(Ln)O(2) Nanoclusters into Nanoparticulated ZrO(2) Supports: When the Cation Size Matters
Three nanostructured catalysts with low total rare earth elements (REEs) content (i.e., 15 mol.%) were prepared by depositing CeO(2) or Ln(3+)-doped CeO(2) (Ln(3+) = Y(3+) or La(3+); Ln/Ce = 0.15) on the surface of ZrO(2) nanoparticles, as nanometre-thick, fluorite-type clusters. These samples were...
Autores principales: | , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2020
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7345361/ https://www.ncbi.nlm.nih.gov/pubmed/32585877 http://dx.doi.org/10.3390/ma13122818 |
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author | Barroso-Bogeat, Adrián Daza Raposo, Iván Blanco, Ginesa Pintado, José María |
author_facet | Barroso-Bogeat, Adrián Daza Raposo, Iván Blanco, Ginesa Pintado, José María |
author_sort | Barroso-Bogeat, Adrián |
collection | PubMed |
description | Three nanostructured catalysts with low total rare earth elements (REEs) content (i.e., 15 mol.%) were prepared by depositing CeO(2) or Ln(3+)-doped CeO(2) (Ln(3+) = Y(3+) or La(3+); Ln/Ce = 0.15) on the surface of ZrO(2) nanoparticles, as nanometre-thick, fluorite-type clusters. These samples were subjected to successive reduction treatments at increasing temperatures, from 500 to 900 °C. A characterisation study by XPS was performed to clarify the diffusion process of cerium into the bulk of ZrO(2) crystallites upon reduction to yield Ce(x)Zr(1−x)O(2−δ) surface phases, and the influence of the incorporation of non-reducible trivalent REE cations, with sizes smaller (Y(3+)) and larger (La(3+)) than Ce(4+) and Ce(3+). For all nanocatalysts, a reduction treatment at a minimum temperature of 900 °C was required to accomplish a significant cerium diffusion. Notwithstanding, the size of the dopant noticeably affected the extent of this diffusion process. As compared to the undoped ZrO(2)-CeO(2) sample, Y(3+) incorporation slightly hindered the cerium diffusion, while the opposite effect was found for the La(3+)-doped nanocatalyst. Furthermore, such differences in cerium diffusion led to changes in the surface and nanostructural features of the oxides, which were tentatively correlated with the redox response of the thermally aged samples. |
format | Online Article Text |
id | pubmed-7345361 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-73453612020-07-09 Tuning the Integration Rate of Ce(Ln)O(2) Nanoclusters into Nanoparticulated ZrO(2) Supports: When the Cation Size Matters Barroso-Bogeat, Adrián Daza Raposo, Iván Blanco, Ginesa Pintado, José María Materials (Basel) Article Three nanostructured catalysts with low total rare earth elements (REEs) content (i.e., 15 mol.%) were prepared by depositing CeO(2) or Ln(3+)-doped CeO(2) (Ln(3+) = Y(3+) or La(3+); Ln/Ce = 0.15) on the surface of ZrO(2) nanoparticles, as nanometre-thick, fluorite-type clusters. These samples were subjected to successive reduction treatments at increasing temperatures, from 500 to 900 °C. A characterisation study by XPS was performed to clarify the diffusion process of cerium into the bulk of ZrO(2) crystallites upon reduction to yield Ce(x)Zr(1−x)O(2−δ) surface phases, and the influence of the incorporation of non-reducible trivalent REE cations, with sizes smaller (Y(3+)) and larger (La(3+)) than Ce(4+) and Ce(3+). For all nanocatalysts, a reduction treatment at a minimum temperature of 900 °C was required to accomplish a significant cerium diffusion. Notwithstanding, the size of the dopant noticeably affected the extent of this diffusion process. As compared to the undoped ZrO(2)-CeO(2) sample, Y(3+) incorporation slightly hindered the cerium diffusion, while the opposite effect was found for the La(3+)-doped nanocatalyst. Furthermore, such differences in cerium diffusion led to changes in the surface and nanostructural features of the oxides, which were tentatively correlated with the redox response of the thermally aged samples. MDPI 2020-06-23 /pmc/articles/PMC7345361/ /pubmed/32585877 http://dx.doi.org/10.3390/ma13122818 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Article Barroso-Bogeat, Adrián Daza Raposo, Iván Blanco, Ginesa Pintado, José María Tuning the Integration Rate of Ce(Ln)O(2) Nanoclusters into Nanoparticulated ZrO(2) Supports: When the Cation Size Matters |
title | Tuning the Integration Rate of Ce(Ln)O(2) Nanoclusters into Nanoparticulated ZrO(2) Supports: When the Cation Size Matters |
title_full | Tuning the Integration Rate of Ce(Ln)O(2) Nanoclusters into Nanoparticulated ZrO(2) Supports: When the Cation Size Matters |
title_fullStr | Tuning the Integration Rate of Ce(Ln)O(2) Nanoclusters into Nanoparticulated ZrO(2) Supports: When the Cation Size Matters |
title_full_unstemmed | Tuning the Integration Rate of Ce(Ln)O(2) Nanoclusters into Nanoparticulated ZrO(2) Supports: When the Cation Size Matters |
title_short | Tuning the Integration Rate of Ce(Ln)O(2) Nanoclusters into Nanoparticulated ZrO(2) Supports: When the Cation Size Matters |
title_sort | tuning the integration rate of ce(ln)o(2) nanoclusters into nanoparticulated zro(2) supports: when the cation size matters |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7345361/ https://www.ncbi.nlm.nih.gov/pubmed/32585877 http://dx.doi.org/10.3390/ma13122818 |
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