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How Can the Introduction of Zr(4+) Ions into TiO(2) Nanomaterial Impact the DSSC Photoconversion Efficiency? A Comprehensive Theoretical and Experimental Consideration

A series of pure and doped TiO(2) nanomaterials with different Zr(4+) ions content have been synthesized by the simple sol-gel method. Both types of materials (nanopowders and nanofilms scratched off of the working electrode’s surface) have been characterized in detail by XRD, TEM, and Raman techniq...

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Autores principales: Bartkowiak, Aleksandra, Korolevych, Oleksandr, Chiarello, Gian Luca, Makowska-Janusik, Malgorzata, Zalas, Maciej
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8198604/
https://www.ncbi.nlm.nih.gov/pubmed/34070846
http://dx.doi.org/10.3390/ma14112955
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author Bartkowiak, Aleksandra
Korolevych, Oleksandr
Chiarello, Gian Luca
Makowska-Janusik, Malgorzata
Zalas, Maciej
author_facet Bartkowiak, Aleksandra
Korolevych, Oleksandr
Chiarello, Gian Luca
Makowska-Janusik, Malgorzata
Zalas, Maciej
author_sort Bartkowiak, Aleksandra
collection PubMed
description A series of pure and doped TiO(2) nanomaterials with different Zr(4+) ions content have been synthesized by the simple sol-gel method. Both types of materials (nanopowders and nanofilms scratched off of the working electrode’s surface) have been characterized in detail by XRD, TEM, and Raman techniques. Inserting dopant ions into the TiO(2) structure has resulted in inhibition of crystal growth and prevention of phase transformation. The role of Zr(4+) ions in this process was explained by performing computer simulations. The three structures such as pure anatase, Zr-doped TiO(2), and tetragonal ZrO(2) have been investigated using density functional theory extended by Hubbard correction. The computational calculations correlate well with experimental results. Formation of defects and broadening of energy bandgap in defected Zr-doped materials have been confirmed. It turned out that the oxygen vacancies with substituting Zr(4+) ions in TiO(2) structure have a positive influence on the performance of dye-sensitized solar cells. The overall photoconversion efficiency enhancement up to 8.63% by introducing 3.7% Zr(4+) ions into the TiO(2) has been confirmed by I-V curves, EIS, and IPCE measurements. Such efficiency of DSSC utilizing the working electrode made by Zr(4+) ions substituted into TiO(2) material lattice has been for the first time reported.
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spelling pubmed-81986042021-06-14 How Can the Introduction of Zr(4+) Ions into TiO(2) Nanomaterial Impact the DSSC Photoconversion Efficiency? A Comprehensive Theoretical and Experimental Consideration Bartkowiak, Aleksandra Korolevych, Oleksandr Chiarello, Gian Luca Makowska-Janusik, Malgorzata Zalas, Maciej Materials (Basel) Article A series of pure and doped TiO(2) nanomaterials with different Zr(4+) ions content have been synthesized by the simple sol-gel method. Both types of materials (nanopowders and nanofilms scratched off of the working electrode’s surface) have been characterized in detail by XRD, TEM, and Raman techniques. Inserting dopant ions into the TiO(2) structure has resulted in inhibition of crystal growth and prevention of phase transformation. The role of Zr(4+) ions in this process was explained by performing computer simulations. The three structures such as pure anatase, Zr-doped TiO(2), and tetragonal ZrO(2) have been investigated using density functional theory extended by Hubbard correction. The computational calculations correlate well with experimental results. Formation of defects and broadening of energy bandgap in defected Zr-doped materials have been confirmed. It turned out that the oxygen vacancies with substituting Zr(4+) ions in TiO(2) structure have a positive influence on the performance of dye-sensitized solar cells. The overall photoconversion efficiency enhancement up to 8.63% by introducing 3.7% Zr(4+) ions into the TiO(2) has been confirmed by I-V curves, EIS, and IPCE measurements. Such efficiency of DSSC utilizing the working electrode made by Zr(4+) ions substituted into TiO(2) material lattice has been for the first time reported. MDPI 2021-05-30 /pmc/articles/PMC8198604/ /pubmed/34070846 http://dx.doi.org/10.3390/ma14112955 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Bartkowiak, Aleksandra
Korolevych, Oleksandr
Chiarello, Gian Luca
Makowska-Janusik, Malgorzata
Zalas, Maciej
How Can the Introduction of Zr(4+) Ions into TiO(2) Nanomaterial Impact the DSSC Photoconversion Efficiency? A Comprehensive Theoretical and Experimental Consideration
title How Can the Introduction of Zr(4+) Ions into TiO(2) Nanomaterial Impact the DSSC Photoconversion Efficiency? A Comprehensive Theoretical and Experimental Consideration
title_full How Can the Introduction of Zr(4+) Ions into TiO(2) Nanomaterial Impact the DSSC Photoconversion Efficiency? A Comprehensive Theoretical and Experimental Consideration
title_fullStr How Can the Introduction of Zr(4+) Ions into TiO(2) Nanomaterial Impact the DSSC Photoconversion Efficiency? A Comprehensive Theoretical and Experimental Consideration
title_full_unstemmed How Can the Introduction of Zr(4+) Ions into TiO(2) Nanomaterial Impact the DSSC Photoconversion Efficiency? A Comprehensive Theoretical and Experimental Consideration
title_short How Can the Introduction of Zr(4+) Ions into TiO(2) Nanomaterial Impact the DSSC Photoconversion Efficiency? A Comprehensive Theoretical and Experimental Consideration
title_sort how can the introduction of zr(4+) ions into tio(2) nanomaterial impact the dssc photoconversion efficiency? a comprehensive theoretical and experimental consideration
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8198604/
https://www.ncbi.nlm.nih.gov/pubmed/34070846
http://dx.doi.org/10.3390/ma14112955
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