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A Generalized Semiempirical Approach to the Modeling of the Optical Band Gap of Ternary Al-(Ga, Nb, Ta, W) Oxides Containing Different Alumina Polymorphs

[Image: see text] A generalization of the modeling equation of optical band gap values for ternary oxides, as a function of cationic ratio composition, is carried out based on the semiempirical correlation between the differences in the electronegativity of oxygen and the average cationic electroneg...

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Autores principales: Di Quarto, Francesco, Zaffora, Andrea, Di Franco, Francesco, Santamaria, Monica
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7877732/
https://www.ncbi.nlm.nih.gov/pubmed/33471511
http://dx.doi.org/10.1021/acs.inorgchem.0c02691
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author Di Quarto, Francesco
Zaffora, Andrea
Di Franco, Francesco
Santamaria, Monica
author_facet Di Quarto, Francesco
Zaffora, Andrea
Di Franco, Francesco
Santamaria, Monica
author_sort Di Quarto, Francesco
collection PubMed
description [Image: see text] A generalization of the modeling equation of optical band gap values for ternary oxides, as a function of cationic ratio composition, is carried out based on the semiempirical correlation between the differences in the electronegativity of oxygen and the average cationic electronegativity proposed some years ago. In this work, a novel approach is suggested to account for the differences in the band gap values of the different polymorphs of binary oxides as well as for ternary oxides existing in different crystalline structures. A preliminary test on the validity of the proposed modeling equations has been carried out by using the numerous experimental data pertaining to alumina and gallia polymorphs as well as the crystalline ternary Ga((1–x))Al(x)O(3) polymorphs (α-Ga((1–x))Al(x)O(3) and β-Ga((1–x))Al(x)O(3)) covering a large range of optical band gap values (4.50–8.50 eV). To make a more rigorous test of the modeling equation, we extended our investigation to amorphous ternary oxides anodically formed on Al-d-metal alloys (Al-Nb, Al-Ta, and Al-W) covering a large range of d-metal composition (x(d-metal) ≥ 0.2). In the last case, the novel approach allows one to overcome some difficulties experienced in fitting the optical band gap dependence from the Al-d-metal mixed anodic oxide composition as well as to provide a rationale for the departure, at the lowest d-metal content (x(d-metal) < 0.2), from the behavior observed for anodic films containing higher d-metal content.
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spelling pubmed-78777322021-02-12 A Generalized Semiempirical Approach to the Modeling of the Optical Band Gap of Ternary Al-(Ga, Nb, Ta, W) Oxides Containing Different Alumina Polymorphs Di Quarto, Francesco Zaffora, Andrea Di Franco, Francesco Santamaria, Monica Inorg Chem [Image: see text] A generalization of the modeling equation of optical band gap values for ternary oxides, as a function of cationic ratio composition, is carried out based on the semiempirical correlation between the differences in the electronegativity of oxygen and the average cationic electronegativity proposed some years ago. In this work, a novel approach is suggested to account for the differences in the band gap values of the different polymorphs of binary oxides as well as for ternary oxides existing in different crystalline structures. A preliminary test on the validity of the proposed modeling equations has been carried out by using the numerous experimental data pertaining to alumina and gallia polymorphs as well as the crystalline ternary Ga((1–x))Al(x)O(3) polymorphs (α-Ga((1–x))Al(x)O(3) and β-Ga((1–x))Al(x)O(3)) covering a large range of optical band gap values (4.50–8.50 eV). To make a more rigorous test of the modeling equation, we extended our investigation to amorphous ternary oxides anodically formed on Al-d-metal alloys (Al-Nb, Al-Ta, and Al-W) covering a large range of d-metal composition (x(d-metal) ≥ 0.2). In the last case, the novel approach allows one to overcome some difficulties experienced in fitting the optical band gap dependence from the Al-d-metal mixed anodic oxide composition as well as to provide a rationale for the departure, at the lowest d-metal content (x(d-metal) < 0.2), from the behavior observed for anodic films containing higher d-metal content. American Chemical Society 2021-01-20 2021-02-01 /pmc/articles/PMC7877732/ /pubmed/33471511 http://dx.doi.org/10.1021/acs.inorgchem.0c02691 Text en © 2021 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Di Quarto, Francesco
Zaffora, Andrea
Di Franco, Francesco
Santamaria, Monica
A Generalized Semiempirical Approach to the Modeling of the Optical Band Gap of Ternary Al-(Ga, Nb, Ta, W) Oxides Containing Different Alumina Polymorphs
title A Generalized Semiempirical Approach to the Modeling of the Optical Band Gap of Ternary Al-(Ga, Nb, Ta, W) Oxides Containing Different Alumina Polymorphs
title_full A Generalized Semiempirical Approach to the Modeling of the Optical Band Gap of Ternary Al-(Ga, Nb, Ta, W) Oxides Containing Different Alumina Polymorphs
title_fullStr A Generalized Semiempirical Approach to the Modeling of the Optical Band Gap of Ternary Al-(Ga, Nb, Ta, W) Oxides Containing Different Alumina Polymorphs
title_full_unstemmed A Generalized Semiempirical Approach to the Modeling of the Optical Band Gap of Ternary Al-(Ga, Nb, Ta, W) Oxides Containing Different Alumina Polymorphs
title_short A Generalized Semiempirical Approach to the Modeling of the Optical Band Gap of Ternary Al-(Ga, Nb, Ta, W) Oxides Containing Different Alumina Polymorphs
title_sort generalized semiempirical approach to the modeling of the optical band gap of ternary al-(ga, nb, ta, w) oxides containing different alumina polymorphs
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7877732/
https://www.ncbi.nlm.nih.gov/pubmed/33471511
http://dx.doi.org/10.1021/acs.inorgchem.0c02691
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