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Water-Mediated Conversion of BaTiO(3) Nanoparticles into BaCO(3) Nanorods in Electrospun Polymer Fibers: Implications for Carbon Capture Applications

[Image: see text] Under ambient conditions and in aqueous environments, transformations of nanoparticle-based ferroelectric components can raise important stability issues that are relevant for applications as multilayer capacitors, flexible piezoelectrics, or biomedical devices. We show that X-ray...

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Autores principales: Razouq, Hasan, Neuhauser, Kerstin, Zickler, Gregor, Berger, Thomas, Diwald, Oliver
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10644300/
https://www.ncbi.nlm.nih.gov/pubmed/37969782
http://dx.doi.org/10.1021/acsanm.3c03703
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author Razouq, Hasan
Neuhauser, Kerstin
Zickler, Gregor
Berger, Thomas
Diwald, Oliver
author_facet Razouq, Hasan
Neuhauser, Kerstin
Zickler, Gregor
Berger, Thomas
Diwald, Oliver
author_sort Razouq, Hasan
collection PubMed
description [Image: see text] Under ambient conditions and in aqueous environments, transformations of nanoparticle-based ferroelectric components can raise important stability issues that are relevant for applications as multilayer capacitors, flexible piezoelectrics, or biomedical devices. We show that X-ray amorphous BaTiO(3) nanoparticles that were grown by flame spray pyrolysis and which can be incorporated into electrospun polymer fibers undergo incongruent Ba(2+) dissolution in the presence of water. At pH > 5 and in contact with air, corresponding Ba solutes spontaneously convert into crystalline BaCO(3) needles to produce characteristic nano- and microstructures. We compared the reactivity of amorphous BaTiO(3) nanoparticle powders with those of nanocrystals after annealing-induced crystallization. The stability of aqueous nanoparticle–polymer formulations, which are typically part of nanoparticle encapsulation in polymers and electrospinning, was included in this analysis. Nanoparticle size, crystallinity, surface area, the presence of carbonaceous surface contaminants, and the effect of surface passivation with polymers are addressed to underline the critical role of condensed water during the synthesis, storage, and processing of BaTiO(3) nanoparticle-based composites.
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spelling pubmed-106443002023-11-15 Water-Mediated Conversion of BaTiO(3) Nanoparticles into BaCO(3) Nanorods in Electrospun Polymer Fibers: Implications for Carbon Capture Applications Razouq, Hasan Neuhauser, Kerstin Zickler, Gregor Berger, Thomas Diwald, Oliver ACS Appl Nano Mater [Image: see text] Under ambient conditions and in aqueous environments, transformations of nanoparticle-based ferroelectric components can raise important stability issues that are relevant for applications as multilayer capacitors, flexible piezoelectrics, or biomedical devices. We show that X-ray amorphous BaTiO(3) nanoparticles that were grown by flame spray pyrolysis and which can be incorporated into electrospun polymer fibers undergo incongruent Ba(2+) dissolution in the presence of water. At pH > 5 and in contact with air, corresponding Ba solutes spontaneously convert into crystalline BaCO(3) needles to produce characteristic nano- and microstructures. We compared the reactivity of amorphous BaTiO(3) nanoparticle powders with those of nanocrystals after annealing-induced crystallization. The stability of aqueous nanoparticle–polymer formulations, which are typically part of nanoparticle encapsulation in polymers and electrospinning, was included in this analysis. Nanoparticle size, crystallinity, surface area, the presence of carbonaceous surface contaminants, and the effect of surface passivation with polymers are addressed to underline the critical role of condensed water during the synthesis, storage, and processing of BaTiO(3) nanoparticle-based composites. American Chemical Society 2023-10-19 /pmc/articles/PMC10644300/ /pubmed/37969782 http://dx.doi.org/10.1021/acsanm.3c03703 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Razouq, Hasan
Neuhauser, Kerstin
Zickler, Gregor
Berger, Thomas
Diwald, Oliver
Water-Mediated Conversion of BaTiO(3) Nanoparticles into BaCO(3) Nanorods in Electrospun Polymer Fibers: Implications for Carbon Capture Applications
title Water-Mediated Conversion of BaTiO(3) Nanoparticles into BaCO(3) Nanorods in Electrospun Polymer Fibers: Implications for Carbon Capture Applications
title_full Water-Mediated Conversion of BaTiO(3) Nanoparticles into BaCO(3) Nanorods in Electrospun Polymer Fibers: Implications for Carbon Capture Applications
title_fullStr Water-Mediated Conversion of BaTiO(3) Nanoparticles into BaCO(3) Nanorods in Electrospun Polymer Fibers: Implications for Carbon Capture Applications
title_full_unstemmed Water-Mediated Conversion of BaTiO(3) Nanoparticles into BaCO(3) Nanorods in Electrospun Polymer Fibers: Implications for Carbon Capture Applications
title_short Water-Mediated Conversion of BaTiO(3) Nanoparticles into BaCO(3) Nanorods in Electrospun Polymer Fibers: Implications for Carbon Capture Applications
title_sort water-mediated conversion of batio(3) nanoparticles into baco(3) nanorods in electrospun polymer fibers: implications for carbon capture applications
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10644300/
https://www.ncbi.nlm.nih.gov/pubmed/37969782
http://dx.doi.org/10.1021/acsanm.3c03703
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