Cargando…

Nano-TiO(2) Coating Layers with Improved Anticorrosive Properties by Aerosol Flame Synthesis and Thermophoretic Deposition on Aluminium Surfaces

TiO(2) in the form of nanoparticles is characterized by high photocatalytic activity and high resistance to oxidation, making it an excellent candidate to realize coatings for improving the corrosion resistance of aluminium surfaces. Different coating technologies have been proposed over the years,...

Descripción completa

Detalles Bibliográficos
Autores principales: De Falco, Gianluigi, De Filippis, Giuseppe, Scudieri, Carmela, Vitale, Luca, Commodo, Mario, Minutolo, Patrizia, D’Anna, Andrea, Ciambelli, Paolo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8198685/
https://www.ncbi.nlm.nih.gov/pubmed/34071533
http://dx.doi.org/10.3390/ma14112918
_version_ 1783707198013046784
author De Falco, Gianluigi
De Filippis, Giuseppe
Scudieri, Carmela
Vitale, Luca
Commodo, Mario
Minutolo, Patrizia
D’Anna, Andrea
Ciambelli, Paolo
author_facet De Falco, Gianluigi
De Filippis, Giuseppe
Scudieri, Carmela
Vitale, Luca
Commodo, Mario
Minutolo, Patrizia
D’Anna, Andrea
Ciambelli, Paolo
author_sort De Falco, Gianluigi
collection PubMed
description TiO(2) in the form of nanoparticles is characterized by high photocatalytic activity and high resistance to oxidation, making it an excellent candidate to realize coatings for improving the corrosion resistance of aluminium surfaces. Different coating technologies have been proposed over the years, which often involve the use of toxic compounds and very high temperatures. In this work, an alternative and novel one-step method for the coating of aluminium alloy surfaces with titania nanoparticles is presented. The method is based on the combination of aerosol flame synthesis and direct thermophoretic deposition and allows to produce nanostructured thin coating layers of titania with different features. Specifically, 3.5 nm anatase nanoparticles were synthesized and deposited onto aluminium alloy AA2024 samples. The thickness of the coating was changed by modifying the total deposition time. A thermal annealing treatment was developed to improve the adhesion of nano-titania on the substrates, and the morphology and structures of the coatings were characterized using (ultra violet) UV-vis absorption, scanning electron microscopy, transmission electron microscopy and Raman spectroscopy. The corrosion resistance behavior of the coatings was evaluated by means of electrochemical polarization measurements, coupled with a numerical analysis using COMSOL software. Both the experimental and numerical electrochemical polarization curves showed a significant increase in the corrosion potential of coated substrates with respect to the bare aluminium and a decrease in the current density. The coatings obtained with higher deposition time and greater thickness showed the best performances in terms of the resistance of the aluminium surfaces to corrosion.
format Online
Article
Text
id pubmed-8198685
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-81986852021-06-14 Nano-TiO(2) Coating Layers with Improved Anticorrosive Properties by Aerosol Flame Synthesis and Thermophoretic Deposition on Aluminium Surfaces De Falco, Gianluigi De Filippis, Giuseppe Scudieri, Carmela Vitale, Luca Commodo, Mario Minutolo, Patrizia D’Anna, Andrea Ciambelli, Paolo Materials (Basel) Article TiO(2) in the form of nanoparticles is characterized by high photocatalytic activity and high resistance to oxidation, making it an excellent candidate to realize coatings for improving the corrosion resistance of aluminium surfaces. Different coating technologies have been proposed over the years, which often involve the use of toxic compounds and very high temperatures. In this work, an alternative and novel one-step method for the coating of aluminium alloy surfaces with titania nanoparticles is presented. The method is based on the combination of aerosol flame synthesis and direct thermophoretic deposition and allows to produce nanostructured thin coating layers of titania with different features. Specifically, 3.5 nm anatase nanoparticles were synthesized and deposited onto aluminium alloy AA2024 samples. The thickness of the coating was changed by modifying the total deposition time. A thermal annealing treatment was developed to improve the adhesion of nano-titania on the substrates, and the morphology and structures of the coatings were characterized using (ultra violet) UV-vis absorption, scanning electron microscopy, transmission electron microscopy and Raman spectroscopy. The corrosion resistance behavior of the coatings was evaluated by means of electrochemical polarization measurements, coupled with a numerical analysis using COMSOL software. Both the experimental and numerical electrochemical polarization curves showed a significant increase in the corrosion potential of coated substrates with respect to the bare aluminium and a decrease in the current density. The coatings obtained with higher deposition time and greater thickness showed the best performances in terms of the resistance of the aluminium surfaces to corrosion. MDPI 2021-05-28 /pmc/articles/PMC8198685/ /pubmed/34071533 http://dx.doi.org/10.3390/ma14112918 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
De Falco, Gianluigi
De Filippis, Giuseppe
Scudieri, Carmela
Vitale, Luca
Commodo, Mario
Minutolo, Patrizia
D’Anna, Andrea
Ciambelli, Paolo
Nano-TiO(2) Coating Layers with Improved Anticorrosive Properties by Aerosol Flame Synthesis and Thermophoretic Deposition on Aluminium Surfaces
title Nano-TiO(2) Coating Layers with Improved Anticorrosive Properties by Aerosol Flame Synthesis and Thermophoretic Deposition on Aluminium Surfaces
title_full Nano-TiO(2) Coating Layers with Improved Anticorrosive Properties by Aerosol Flame Synthesis and Thermophoretic Deposition on Aluminium Surfaces
title_fullStr Nano-TiO(2) Coating Layers with Improved Anticorrosive Properties by Aerosol Flame Synthesis and Thermophoretic Deposition on Aluminium Surfaces
title_full_unstemmed Nano-TiO(2) Coating Layers with Improved Anticorrosive Properties by Aerosol Flame Synthesis and Thermophoretic Deposition on Aluminium Surfaces
title_short Nano-TiO(2) Coating Layers with Improved Anticorrosive Properties by Aerosol Flame Synthesis and Thermophoretic Deposition on Aluminium Surfaces
title_sort nano-tio(2) coating layers with improved anticorrosive properties by aerosol flame synthesis and thermophoretic deposition on aluminium surfaces
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8198685/
https://www.ncbi.nlm.nih.gov/pubmed/34071533
http://dx.doi.org/10.3390/ma14112918
work_keys_str_mv AT defalcogianluigi nanotio2coatinglayerswithimprovedanticorrosivepropertiesbyaerosolflamesynthesisandthermophoreticdepositiononaluminiumsurfaces
AT defilippisgiuseppe nanotio2coatinglayerswithimprovedanticorrosivepropertiesbyaerosolflamesynthesisandthermophoreticdepositiononaluminiumsurfaces
AT scudiericarmela nanotio2coatinglayerswithimprovedanticorrosivepropertiesbyaerosolflamesynthesisandthermophoreticdepositiononaluminiumsurfaces
AT vitaleluca nanotio2coatinglayerswithimprovedanticorrosivepropertiesbyaerosolflamesynthesisandthermophoreticdepositiononaluminiumsurfaces
AT commodomario nanotio2coatinglayerswithimprovedanticorrosivepropertiesbyaerosolflamesynthesisandthermophoreticdepositiononaluminiumsurfaces
AT minutolopatrizia nanotio2coatinglayerswithimprovedanticorrosivepropertiesbyaerosolflamesynthesisandthermophoreticdepositiononaluminiumsurfaces
AT dannaandrea nanotio2coatinglayerswithimprovedanticorrosivepropertiesbyaerosolflamesynthesisandthermophoreticdepositiononaluminiumsurfaces
AT ciambellipaolo nanotio2coatinglayerswithimprovedanticorrosivepropertiesbyaerosolflamesynthesisandthermophoreticdepositiononaluminiumsurfaces