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Fe(3+)/Nb(5+) Co-doped rutile–TiO(2) nanocrystalline powders prepared by a combustion process: preparation and characterization and their giant dielectric response

Fe(3+)/Nb(5+) co-doped TiO(2) (FeNb-TO) nanocrystalline powders were prepared by a combustion process. A pure rutile–TiO(2) phase of powders and sintered ceramics with a dense microstructure was achieved. Both co-dopants were homogeneously dispersed in the ceramic microstructure. The presence of oxy...

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Autores principales: Nachaithong, Theeranuch, Moontragoon, Pairot, Chanlek, Narong, Thongbai, Prasit
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9055153/
https://www.ncbi.nlm.nih.gov/pubmed/35517467
http://dx.doi.org/10.1039/d0ra02963g
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author Nachaithong, Theeranuch
Moontragoon, Pairot
Chanlek, Narong
Thongbai, Prasit
author_facet Nachaithong, Theeranuch
Moontragoon, Pairot
Chanlek, Narong
Thongbai, Prasit
author_sort Nachaithong, Theeranuch
collection PubMed
description Fe(3+)/Nb(5+) co-doped TiO(2) (FeNb-TO) nanocrystalline powders were prepared by a combustion process. A pure rutile–TiO(2) phase of powders and sintered ceramics with a dense microstructure was achieved. Both co-dopants were homogeneously dispersed in the ceramic microstructure. The presence of oxygen vacancies was confirmed by Raman and X-ray photoelectron spectroscopy techniques. The low-frequency dielectric permittivity enhanced as co-doping concentration increased. The thermally activated giant-dielectric relaxation of FeNb-TO ceramics was observed. Removing the outer-surface layer had a slight effect on the dielectric properties of FeNb-TO ceramics. Density functional theory (DFT) calculation showed that, in the energy preferable configuration, the 2Fe atoms are located near the oxygen vacancy, forming a triangle-shaped FeV(o)Ti defect complex. This defect cluster was far away from the diamond-shaped 2Nb2Ti defect complex. Thus, the electron-pinned defect-dipoles (EPDD) cannot be formed. The giant-dielectric relaxation process of the FeNb-TO ceramics might be attributed to the interfacial polarization associated with electron hopping between Ti(3+)/Ti(4+) ions inside the grains, rather than due to the surface barrier layer capacitor (SBLC) or EPDD effect.
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spelling pubmed-90551532022-05-04 Fe(3+)/Nb(5+) Co-doped rutile–TiO(2) nanocrystalline powders prepared by a combustion process: preparation and characterization and their giant dielectric response Nachaithong, Theeranuch Moontragoon, Pairot Chanlek, Narong Thongbai, Prasit RSC Adv Chemistry Fe(3+)/Nb(5+) co-doped TiO(2) (FeNb-TO) nanocrystalline powders were prepared by a combustion process. A pure rutile–TiO(2) phase of powders and sintered ceramics with a dense microstructure was achieved. Both co-dopants were homogeneously dispersed in the ceramic microstructure. The presence of oxygen vacancies was confirmed by Raman and X-ray photoelectron spectroscopy techniques. The low-frequency dielectric permittivity enhanced as co-doping concentration increased. The thermally activated giant-dielectric relaxation of FeNb-TO ceramics was observed. Removing the outer-surface layer had a slight effect on the dielectric properties of FeNb-TO ceramics. Density functional theory (DFT) calculation showed that, in the energy preferable configuration, the 2Fe atoms are located near the oxygen vacancy, forming a triangle-shaped FeV(o)Ti defect complex. This defect cluster was far away from the diamond-shaped 2Nb2Ti defect complex. Thus, the electron-pinned defect-dipoles (EPDD) cannot be formed. The giant-dielectric relaxation process of the FeNb-TO ceramics might be attributed to the interfacial polarization associated with electron hopping between Ti(3+)/Ti(4+) ions inside the grains, rather than due to the surface barrier layer capacitor (SBLC) or EPDD effect. The Royal Society of Chemistry 2020-06-30 /pmc/articles/PMC9055153/ /pubmed/35517467 http://dx.doi.org/10.1039/d0ra02963g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Nachaithong, Theeranuch
Moontragoon, Pairot
Chanlek, Narong
Thongbai, Prasit
Fe(3+)/Nb(5+) Co-doped rutile–TiO(2) nanocrystalline powders prepared by a combustion process: preparation and characterization and their giant dielectric response
title Fe(3+)/Nb(5+) Co-doped rutile–TiO(2) nanocrystalline powders prepared by a combustion process: preparation and characterization and their giant dielectric response
title_full Fe(3+)/Nb(5+) Co-doped rutile–TiO(2) nanocrystalline powders prepared by a combustion process: preparation and characterization and their giant dielectric response
title_fullStr Fe(3+)/Nb(5+) Co-doped rutile–TiO(2) nanocrystalline powders prepared by a combustion process: preparation and characterization and their giant dielectric response
title_full_unstemmed Fe(3+)/Nb(5+) Co-doped rutile–TiO(2) nanocrystalline powders prepared by a combustion process: preparation and characterization and their giant dielectric response
title_short Fe(3+)/Nb(5+) Co-doped rutile–TiO(2) nanocrystalline powders prepared by a combustion process: preparation and characterization and their giant dielectric response
title_sort fe(3+)/nb(5+) co-doped rutile–tio(2) nanocrystalline powders prepared by a combustion process: preparation and characterization and their giant dielectric response
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9055153/
https://www.ncbi.nlm.nih.gov/pubmed/35517467
http://dx.doi.org/10.1039/d0ra02963g
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