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Elucidation of the Crystal Growth Characteristics of SnO(2) Nanoaggregates Formed by Sequential Low-Temperature Sol-Gel Reaction and Freeze Drying

SnO(2) nanoparticles are regarded as attractive, functional materials because of their versatile applications. SnO(2) nanoaggregates with single-nanometer-scale lumpy surfaces provide opportunities to enhance hetero-material interfacial areas, leading to the performance improvement of materials and...

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Autores principales: Vafaei, Saeid, Wolosz, Alexander, Ethridge, Catlin, Schnupf, Udo, Hattori, Nagisa, Sugiura, Takashi, Manseki, Kazuhiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8308174/
https://www.ncbi.nlm.nih.gov/pubmed/34361129
http://dx.doi.org/10.3390/nano11071738
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author Vafaei, Saeid
Wolosz, Alexander
Ethridge, Catlin
Schnupf, Udo
Hattori, Nagisa
Sugiura, Takashi
Manseki, Kazuhiro
author_facet Vafaei, Saeid
Wolosz, Alexander
Ethridge, Catlin
Schnupf, Udo
Hattori, Nagisa
Sugiura, Takashi
Manseki, Kazuhiro
author_sort Vafaei, Saeid
collection PubMed
description SnO(2) nanoparticles are regarded as attractive, functional materials because of their versatile applications. SnO(2) nanoaggregates with single-nanometer-scale lumpy surfaces provide opportunities to enhance hetero-material interfacial areas, leading to the performance improvement of materials and devices. For the first time, we demonstrate that SnO(2) nanoaggregates with oxygen vacancies can be produced by a simple, low-temperature sol-gel approach combined with freeze-drying. We characterize the initiation of the low-temperature crystal growth of the obtained SnO(2) nanoaggregates using high-resolution transmission electron microscopy (HRTEM). The results indicate that Sn (II) hydroxide precursors are converted into submicrometer-scale nanoaggregates consisting of uniform SnO(2) spherical nanocrystals (2~5 nm in size). As the sol-gel reaction time increases, further crystallization is observed through the neighboring particles in a confined part of the aggregates, while the specific surface areas of the SnO(2) samples increase concomitantly. In addition, X-ray photoelectron spectroscopy (XPS) measurements suggest that Sn (II) ions exist in the SnO(2) samples when the reactions are stopped after a short time or when a relatively high concentration of Sn (II) is involved in the corresponding sol-gel reactions. Understanding this low-temperature growth of 3D SnO(2) will provide new avenues for developing and producing high-performance, photofunctional nanomaterials via a cost-effective and scalable method.
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spelling pubmed-83081742021-07-25 Elucidation of the Crystal Growth Characteristics of SnO(2) Nanoaggregates Formed by Sequential Low-Temperature Sol-Gel Reaction and Freeze Drying Vafaei, Saeid Wolosz, Alexander Ethridge, Catlin Schnupf, Udo Hattori, Nagisa Sugiura, Takashi Manseki, Kazuhiro Nanomaterials (Basel) Article SnO(2) nanoparticles are regarded as attractive, functional materials because of their versatile applications. SnO(2) nanoaggregates with single-nanometer-scale lumpy surfaces provide opportunities to enhance hetero-material interfacial areas, leading to the performance improvement of materials and devices. For the first time, we demonstrate that SnO(2) nanoaggregates with oxygen vacancies can be produced by a simple, low-temperature sol-gel approach combined with freeze-drying. We characterize the initiation of the low-temperature crystal growth of the obtained SnO(2) nanoaggregates using high-resolution transmission electron microscopy (HRTEM). The results indicate that Sn (II) hydroxide precursors are converted into submicrometer-scale nanoaggregates consisting of uniform SnO(2) spherical nanocrystals (2~5 nm in size). As the sol-gel reaction time increases, further crystallization is observed through the neighboring particles in a confined part of the aggregates, while the specific surface areas of the SnO(2) samples increase concomitantly. In addition, X-ray photoelectron spectroscopy (XPS) measurements suggest that Sn (II) ions exist in the SnO(2) samples when the reactions are stopped after a short time or when a relatively high concentration of Sn (II) is involved in the corresponding sol-gel reactions. Understanding this low-temperature growth of 3D SnO(2) will provide new avenues for developing and producing high-performance, photofunctional nanomaterials via a cost-effective and scalable method. MDPI 2021-07-01 /pmc/articles/PMC8308174/ /pubmed/34361129 http://dx.doi.org/10.3390/nano11071738 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
Vafaei, Saeid
Wolosz, Alexander
Ethridge, Catlin
Schnupf, Udo
Hattori, Nagisa
Sugiura, Takashi
Manseki, Kazuhiro
Elucidation of the Crystal Growth Characteristics of SnO(2) Nanoaggregates Formed by Sequential Low-Temperature Sol-Gel Reaction and Freeze Drying
title Elucidation of the Crystal Growth Characteristics of SnO(2) Nanoaggregates Formed by Sequential Low-Temperature Sol-Gel Reaction and Freeze Drying
title_full Elucidation of the Crystal Growth Characteristics of SnO(2) Nanoaggregates Formed by Sequential Low-Temperature Sol-Gel Reaction and Freeze Drying
title_fullStr Elucidation of the Crystal Growth Characteristics of SnO(2) Nanoaggregates Formed by Sequential Low-Temperature Sol-Gel Reaction and Freeze Drying
title_full_unstemmed Elucidation of the Crystal Growth Characteristics of SnO(2) Nanoaggregates Formed by Sequential Low-Temperature Sol-Gel Reaction and Freeze Drying
title_short Elucidation of the Crystal Growth Characteristics of SnO(2) Nanoaggregates Formed by Sequential Low-Temperature Sol-Gel Reaction and Freeze Drying
title_sort elucidation of the crystal growth characteristics of sno(2) nanoaggregates formed by sequential low-temperature sol-gel reaction and freeze drying
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8308174/
https://www.ncbi.nlm.nih.gov/pubmed/34361129
http://dx.doi.org/10.3390/nano11071738
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