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The Use of Anodic Oxides in Practical and Sustainable Devices for Energy Conversion and Storage

This review addresses the main contributions of anodic oxide films synthesized and designed to overcome the current limitations of practical applications in energy conversion and storage devices. We present some strategies adopted to improve the efficiency, stability, and overall performance of thes...

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Autores principales: Santos, Janaina Soares, Araújo, Patrícia dos Santos, Pissolitto, Yasmin Bastos, Lopes, Paula Prenholatto, Simon, Anna Paulla, Sikora, Mariana de Souza, Trivinho-Strixino, Francisco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7830790/
https://www.ncbi.nlm.nih.gov/pubmed/33466856
http://dx.doi.org/10.3390/ma14020383
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author Santos, Janaina Soares
Araújo, Patrícia dos Santos
Pissolitto, Yasmin Bastos
Lopes, Paula Prenholatto
Simon, Anna Paulla
Sikora, Mariana de Souza
Trivinho-Strixino, Francisco
author_facet Santos, Janaina Soares
Araújo, Patrícia dos Santos
Pissolitto, Yasmin Bastos
Lopes, Paula Prenholatto
Simon, Anna Paulla
Sikora, Mariana de Souza
Trivinho-Strixino, Francisco
author_sort Santos, Janaina Soares
collection PubMed
description This review addresses the main contributions of anodic oxide films synthesized and designed to overcome the current limitations of practical applications in energy conversion and storage devices. We present some strategies adopted to improve the efficiency, stability, and overall performance of these sustainable technologies operating via photo, photoelectrochemical, and electrochemical processes. The facile and scalable synthesis with strict control of the properties combined with the low-cost, high surface area, chemical stability, and unidirectional orientation of these nanostructures make the anodized oxides attractive for these applications. Assuming different functionalities, TiO(2)-NT is the widely explored anodic oxide in dye-sensitized solar cells, PEC water-splitting systems, fuel cells, supercapacitors, and batteries. However, other nanostructured anodic films based on WO(3), Cu(x)O, ZnO, NiO, SnO, Fe(2)O(3), ZrO(2), Nb(2)O(5), and Ta(2)O(5) are also explored and act as the respective active layers in several devices. The use of AAO as a structural material to guide the synthesis is also reported. Although in the development stage, the proof-of-concept of these devices demonstrates the feasibility of using the anodic oxide as a component and opens up new perspectives for the industrial and commercial utilization of these technologies.
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spelling pubmed-78307902021-01-26 The Use of Anodic Oxides in Practical and Sustainable Devices for Energy Conversion and Storage Santos, Janaina Soares Araújo, Patrícia dos Santos Pissolitto, Yasmin Bastos Lopes, Paula Prenholatto Simon, Anna Paulla Sikora, Mariana de Souza Trivinho-Strixino, Francisco Materials (Basel) Review This review addresses the main contributions of anodic oxide films synthesized and designed to overcome the current limitations of practical applications in energy conversion and storage devices. We present some strategies adopted to improve the efficiency, stability, and overall performance of these sustainable technologies operating via photo, photoelectrochemical, and electrochemical processes. The facile and scalable synthesis with strict control of the properties combined with the low-cost, high surface area, chemical stability, and unidirectional orientation of these nanostructures make the anodized oxides attractive for these applications. Assuming different functionalities, TiO(2)-NT is the widely explored anodic oxide in dye-sensitized solar cells, PEC water-splitting systems, fuel cells, supercapacitors, and batteries. However, other nanostructured anodic films based on WO(3), Cu(x)O, ZnO, NiO, SnO, Fe(2)O(3), ZrO(2), Nb(2)O(5), and Ta(2)O(5) are also explored and act as the respective active layers in several devices. The use of AAO as a structural material to guide the synthesis is also reported. Although in the development stage, the proof-of-concept of these devices demonstrates the feasibility of using the anodic oxide as a component and opens up new perspectives for the industrial and commercial utilization of these technologies. MDPI 2021-01-14 /pmc/articles/PMC7830790/ /pubmed/33466856 http://dx.doi.org/10.3390/ma14020383 Text en © 2021 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 Review
Santos, Janaina Soares
Araújo, Patrícia dos Santos
Pissolitto, Yasmin Bastos
Lopes, Paula Prenholatto
Simon, Anna Paulla
Sikora, Mariana de Souza
Trivinho-Strixino, Francisco
The Use of Anodic Oxides in Practical and Sustainable Devices for Energy Conversion and Storage
title The Use of Anodic Oxides in Practical and Sustainable Devices for Energy Conversion and Storage
title_full The Use of Anodic Oxides in Practical and Sustainable Devices for Energy Conversion and Storage
title_fullStr The Use of Anodic Oxides in Practical and Sustainable Devices for Energy Conversion and Storage
title_full_unstemmed The Use of Anodic Oxides in Practical and Sustainable Devices for Energy Conversion and Storage
title_short The Use of Anodic Oxides in Practical and Sustainable Devices for Energy Conversion and Storage
title_sort use of anodic oxides in practical and sustainable devices for energy conversion and storage
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7830790/
https://www.ncbi.nlm.nih.gov/pubmed/33466856
http://dx.doi.org/10.3390/ma14020383
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