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Structure, Morphology, and Faceting of TiO(2) Photocatalysts by the Debye Scattering Equation Method. The P25 and P90 Cases of Study

Characterization of functional nanocrystalline materials in terms of quantitative determination of size, size dispersion, type, and extension of exposed facets still remains a challenging task. This is particularly the case of anisotropically shaped nanocrystals (NCs) like the TiO(2) photocatalysts....

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Autores principales: Bertolotti, Federica, Vivani, Anna, Moscheni, Daniele, Ferri, Fabio, Cervellino, Antonio, Masciocchi, Norberto, Guagliardi, Antonietta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7221600/
https://www.ncbi.nlm.nih.gov/pubmed/32295052
http://dx.doi.org/10.3390/nano10040743
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author Bertolotti, Federica
Vivani, Anna
Moscheni, Daniele
Ferri, Fabio
Cervellino, Antonio
Masciocchi, Norberto
Guagliardi, Antonietta
author_facet Bertolotti, Federica
Vivani, Anna
Moscheni, Daniele
Ferri, Fabio
Cervellino, Antonio
Masciocchi, Norberto
Guagliardi, Antonietta
author_sort Bertolotti, Federica
collection PubMed
description Characterization of functional nanocrystalline materials in terms of quantitative determination of size, size dispersion, type, and extension of exposed facets still remains a challenging task. This is particularly the case of anisotropically shaped nanocrystals (NCs) like the TiO(2) photocatalysts. Here, commercially available P25 and P90 titania nanopowders have been characterized by wide-angle X-ray total scattering techniques. Synchrotron data were modelled by the reciprocal space-based Debye scattering equation (DSE) method using atomistic models of NC populations (simultaneously carrying atomic and nanoscale structural features) for both anatase and rutile phases. Statistically robust descriptors are provided of size, morphology, and {101} vs. {001} facet area of truncated tetragonal bipyramids for anatase, jointly to polymorph quantification. The effects of using the proper NC shape on the X-ray diffraction pattern are analyzed in depth through DSE simulations by considering variable bipyramid aspect ratios (resulting in different {101} vs. {001} surface) and relative dispersion in a bivariate manner. We demonstrate that using prismatic NCs having equal volume and aspect ratio as bipyramids provides reasonably accurate sizes and {101} and {001} surface areas of the parent morphology.
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spelling pubmed-72216002020-05-22 Structure, Morphology, and Faceting of TiO(2) Photocatalysts by the Debye Scattering Equation Method. The P25 and P90 Cases of Study Bertolotti, Federica Vivani, Anna Moscheni, Daniele Ferri, Fabio Cervellino, Antonio Masciocchi, Norberto Guagliardi, Antonietta Nanomaterials (Basel) Article Characterization of functional nanocrystalline materials in terms of quantitative determination of size, size dispersion, type, and extension of exposed facets still remains a challenging task. This is particularly the case of anisotropically shaped nanocrystals (NCs) like the TiO(2) photocatalysts. Here, commercially available P25 and P90 titania nanopowders have been characterized by wide-angle X-ray total scattering techniques. Synchrotron data were modelled by the reciprocal space-based Debye scattering equation (DSE) method using atomistic models of NC populations (simultaneously carrying atomic and nanoscale structural features) for both anatase and rutile phases. Statistically robust descriptors are provided of size, morphology, and {101} vs. {001} facet area of truncated tetragonal bipyramids for anatase, jointly to polymorph quantification. The effects of using the proper NC shape on the X-ray diffraction pattern are analyzed in depth through DSE simulations by considering variable bipyramid aspect ratios (resulting in different {101} vs. {001} surface) and relative dispersion in a bivariate manner. We demonstrate that using prismatic NCs having equal volume and aspect ratio as bipyramids provides reasonably accurate sizes and {101} and {001} surface areas of the parent morphology. MDPI 2020-04-13 /pmc/articles/PMC7221600/ /pubmed/32295052 http://dx.doi.org/10.3390/nano10040743 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
Bertolotti, Federica
Vivani, Anna
Moscheni, Daniele
Ferri, Fabio
Cervellino, Antonio
Masciocchi, Norberto
Guagliardi, Antonietta
Structure, Morphology, and Faceting of TiO(2) Photocatalysts by the Debye Scattering Equation Method. The P25 and P90 Cases of Study
title Structure, Morphology, and Faceting of TiO(2) Photocatalysts by the Debye Scattering Equation Method. The P25 and P90 Cases of Study
title_full Structure, Morphology, and Faceting of TiO(2) Photocatalysts by the Debye Scattering Equation Method. The P25 and P90 Cases of Study
title_fullStr Structure, Morphology, and Faceting of TiO(2) Photocatalysts by the Debye Scattering Equation Method. The P25 and P90 Cases of Study
title_full_unstemmed Structure, Morphology, and Faceting of TiO(2) Photocatalysts by the Debye Scattering Equation Method. The P25 and P90 Cases of Study
title_short Structure, Morphology, and Faceting of TiO(2) Photocatalysts by the Debye Scattering Equation Method. The P25 and P90 Cases of Study
title_sort structure, morphology, and faceting of tio(2) photocatalysts by the debye scattering equation method. the p25 and p90 cases of study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7221600/
https://www.ncbi.nlm.nih.gov/pubmed/32295052
http://dx.doi.org/10.3390/nano10040743
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