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Effect of Hydrothermal Treatment and Doping on the Microstructural Features of Sol-Gel Derived BaTiO(3) Nanoparticles

Barium Titanate (BaTiO(3)) is one of the most promising lead-free ferroelectric materials for the development of piezoelectric nanocomposites for nanogenerators and sensors. The miniaturization of electronic devices is pushing researchers to produce nanometric-sized particles to be embedded into fle...

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Autores principales: Zamperlin, Nico, Ceccato, Riccardo, Fontana, Marco, Pegoretti, Alessandro, Chiappini, Andrea, Dirè, Sandra
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8348855/
https://www.ncbi.nlm.nih.gov/pubmed/34361539
http://dx.doi.org/10.3390/ma14154345
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author Zamperlin, Nico
Ceccato, Riccardo
Fontana, Marco
Pegoretti, Alessandro
Chiappini, Andrea
Dirè, Sandra
author_facet Zamperlin, Nico
Ceccato, Riccardo
Fontana, Marco
Pegoretti, Alessandro
Chiappini, Andrea
Dirè, Sandra
author_sort Zamperlin, Nico
collection PubMed
description Barium Titanate (BaTiO(3)) is one of the most promising lead-free ferroelectric materials for the development of piezoelectric nanocomposites for nanogenerators and sensors. The miniaturization of electronic devices is pushing researchers to produce nanometric-sized particles to be embedded into flexible polymeric matrices. Here, we present the sol-gel preparation of crystalline BaTiO(3) nanoparticles (NPs) obtained by reacting barium acetate (Ba(CH(3)COO)(2)) and titanium (IV) isopropoxide (Ti(O(i)Pr)(4)). The reaction was performed both at ambient conditions and by a hydrothermal process carried on at 200 °C for times ranging from 2 to 8 h. Doped BaTiO(3) nanoparticles were also produced by addition of Na, Ca, and Bi cations. The powders were annealed at 900 °C in order to improve NPs crystallinity and promote the cubic-to-tetragonal (c⟶t) phase transformation. The microstructural features of nanoparticles were investigated in dependence of both the hydrothermal reaction time and the presence of dopants. It is found that short hydrothermal treatment (2 h) can produce BaTiO(3) spherical and more homogeneous nanoparticles with respect to longer hydrothermal treatments (4 h, 6 h, 8 h). These particles (2 h) are characterized by decreased dimension (approx. 120 nm), narrower size distribution and higher tetragonality (1.007) in comparison with particles prepared at ambient pressure (1.003). In addition, the short hydrothermal treatment (2 h) produces particles with tetragonality comparable to the one obtained after the longest process (8 h). Finally, dopants were found to affect to different extents both the c⟶t phase transformation and the crystallite sizes.
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spelling pubmed-83488552021-08-08 Effect of Hydrothermal Treatment and Doping on the Microstructural Features of Sol-Gel Derived BaTiO(3) Nanoparticles Zamperlin, Nico Ceccato, Riccardo Fontana, Marco Pegoretti, Alessandro Chiappini, Andrea Dirè, Sandra Materials (Basel) Article Barium Titanate (BaTiO(3)) is one of the most promising lead-free ferroelectric materials for the development of piezoelectric nanocomposites for nanogenerators and sensors. The miniaturization of electronic devices is pushing researchers to produce nanometric-sized particles to be embedded into flexible polymeric matrices. Here, we present the sol-gel preparation of crystalline BaTiO(3) nanoparticles (NPs) obtained by reacting barium acetate (Ba(CH(3)COO)(2)) and titanium (IV) isopropoxide (Ti(O(i)Pr)(4)). The reaction was performed both at ambient conditions and by a hydrothermal process carried on at 200 °C for times ranging from 2 to 8 h. Doped BaTiO(3) nanoparticles were also produced by addition of Na, Ca, and Bi cations. The powders were annealed at 900 °C in order to improve NPs crystallinity and promote the cubic-to-tetragonal (c⟶t) phase transformation. The microstructural features of nanoparticles were investigated in dependence of both the hydrothermal reaction time and the presence of dopants. It is found that short hydrothermal treatment (2 h) can produce BaTiO(3) spherical and more homogeneous nanoparticles with respect to longer hydrothermal treatments (4 h, 6 h, 8 h). These particles (2 h) are characterized by decreased dimension (approx. 120 nm), narrower size distribution and higher tetragonality (1.007) in comparison with particles prepared at ambient pressure (1.003). In addition, the short hydrothermal treatment (2 h) produces particles with tetragonality comparable to the one obtained after the longest process (8 h). Finally, dopants were found to affect to different extents both the c⟶t phase transformation and the crystallite sizes. MDPI 2021-08-03 /pmc/articles/PMC8348855/ /pubmed/34361539 http://dx.doi.org/10.3390/ma14154345 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
Zamperlin, Nico
Ceccato, Riccardo
Fontana, Marco
Pegoretti, Alessandro
Chiappini, Andrea
Dirè, Sandra
Effect of Hydrothermal Treatment and Doping on the Microstructural Features of Sol-Gel Derived BaTiO(3) Nanoparticles
title Effect of Hydrothermal Treatment and Doping on the Microstructural Features of Sol-Gel Derived BaTiO(3) Nanoparticles
title_full Effect of Hydrothermal Treatment and Doping on the Microstructural Features of Sol-Gel Derived BaTiO(3) Nanoparticles
title_fullStr Effect of Hydrothermal Treatment and Doping on the Microstructural Features of Sol-Gel Derived BaTiO(3) Nanoparticles
title_full_unstemmed Effect of Hydrothermal Treatment and Doping on the Microstructural Features of Sol-Gel Derived BaTiO(3) Nanoparticles
title_short Effect of Hydrothermal Treatment and Doping on the Microstructural Features of Sol-Gel Derived BaTiO(3) Nanoparticles
title_sort effect of hydrothermal treatment and doping on the microstructural features of sol-gel derived batio(3) nanoparticles
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8348855/
https://www.ncbi.nlm.nih.gov/pubmed/34361539
http://dx.doi.org/10.3390/ma14154345
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