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Synthesis and thermal stability of ZrO(2)@SiO(2) core–shell submicron particles

ZrO(2)@SiO(2) core–shell submicron particles are promising candidates for the development of advanced optical materials. Here, submicron zirconia particles were synthesized using a modified sol–gel method and pre-calcined at 400 °C. Silica shells were grown on these particles (average size: ∼270 nm)...

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Autores principales: Finsel, Maik, Hemme, Maria, Döring, Sebastian, Rüter, Jil S. V., Dahl, Gregor T., Krekeler, Tobias, Kornowski, Andreas, Ritter, Martin, Weller, Horst, Vossmeyer, Tobias
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9070609/
https://www.ncbi.nlm.nih.gov/pubmed/35528597
http://dx.doi.org/10.1039/c9ra05078g
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author Finsel, Maik
Hemme, Maria
Döring, Sebastian
Rüter, Jil S. V.
Dahl, Gregor T.
Krekeler, Tobias
Kornowski, Andreas
Ritter, Martin
Weller, Horst
Vossmeyer, Tobias
author_facet Finsel, Maik
Hemme, Maria
Döring, Sebastian
Rüter, Jil S. V.
Dahl, Gregor T.
Krekeler, Tobias
Kornowski, Andreas
Ritter, Martin
Weller, Horst
Vossmeyer, Tobias
author_sort Finsel, Maik
collection PubMed
description ZrO(2)@SiO(2) core–shell submicron particles are promising candidates for the development of advanced optical materials. Here, submicron zirconia particles were synthesized using a modified sol–gel method and pre-calcined at 400 °C. Silica shells were grown on these particles (average size: ∼270 nm) with well-defined thicknesses (26 to 61 nm) using a seeded-growth Stöber approach. To study the thermal stability of bare ZrO(2) cores and ZrO(2)@SiO(2) core–shell particles they were calcined at 450 to 1200 °C. After heat treatments, the particles were characterized by SEM, TEM, STEM, cross-sectional EDX mapping, and XRD. The non-encapsulated, bare ZrO(2) particles predominantly transitioned to the tetragonal phase after pre-calcination at 400 °C. Increasing the temperature to 600 °C transformed them to monoclinic. Finally, grain coarsening destroyed the spheroidal particle shape after heating to 800 °C. In striking contrast, SiO(2)-encapsulation significantly inhibited grain growth and the t → m transition progressed considerably only after heating to 1000 °C, whereupon the particle shape, with a smooth silica shell, remained stable. Particle disintegration was observed after heating to 1200 °C. Thus, ZrO(2)@SiO(2) core–shell particles are suited for high-temperature applications up to ∼1000 °C. Different mechanisms are considered to explain the markedly enhanced stability of ZrO(2)@SiO(2) core–shell particles.
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spelling pubmed-90706092022-05-05 Synthesis and thermal stability of ZrO(2)@SiO(2) core–shell submicron particles Finsel, Maik Hemme, Maria Döring, Sebastian Rüter, Jil S. V. Dahl, Gregor T. Krekeler, Tobias Kornowski, Andreas Ritter, Martin Weller, Horst Vossmeyer, Tobias RSC Adv Chemistry ZrO(2)@SiO(2) core–shell submicron particles are promising candidates for the development of advanced optical materials. Here, submicron zirconia particles were synthesized using a modified sol–gel method and pre-calcined at 400 °C. Silica shells were grown on these particles (average size: ∼270 nm) with well-defined thicknesses (26 to 61 nm) using a seeded-growth Stöber approach. To study the thermal stability of bare ZrO(2) cores and ZrO(2)@SiO(2) core–shell particles they were calcined at 450 to 1200 °C. After heat treatments, the particles were characterized by SEM, TEM, STEM, cross-sectional EDX mapping, and XRD. The non-encapsulated, bare ZrO(2) particles predominantly transitioned to the tetragonal phase after pre-calcination at 400 °C. Increasing the temperature to 600 °C transformed them to monoclinic. Finally, grain coarsening destroyed the spheroidal particle shape after heating to 800 °C. In striking contrast, SiO(2)-encapsulation significantly inhibited grain growth and the t → m transition progressed considerably only after heating to 1000 °C, whereupon the particle shape, with a smooth silica shell, remained stable. Particle disintegration was observed after heating to 1200 °C. Thus, ZrO(2)@SiO(2) core–shell particles are suited for high-temperature applications up to ∼1000 °C. Different mechanisms are considered to explain the markedly enhanced stability of ZrO(2)@SiO(2) core–shell particles. The Royal Society of Chemistry 2019-08-28 /pmc/articles/PMC9070609/ /pubmed/35528597 http://dx.doi.org/10.1039/c9ra05078g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Finsel, Maik
Hemme, Maria
Döring, Sebastian
Rüter, Jil S. V.
Dahl, Gregor T.
Krekeler, Tobias
Kornowski, Andreas
Ritter, Martin
Weller, Horst
Vossmeyer, Tobias
Synthesis and thermal stability of ZrO(2)@SiO(2) core–shell submicron particles
title Synthesis and thermal stability of ZrO(2)@SiO(2) core–shell submicron particles
title_full Synthesis and thermal stability of ZrO(2)@SiO(2) core–shell submicron particles
title_fullStr Synthesis and thermal stability of ZrO(2)@SiO(2) core–shell submicron particles
title_full_unstemmed Synthesis and thermal stability of ZrO(2)@SiO(2) core–shell submicron particles
title_short Synthesis and thermal stability of ZrO(2)@SiO(2) core–shell submicron particles
title_sort synthesis and thermal stability of zro(2)@sio(2) core–shell submicron particles
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9070609/
https://www.ncbi.nlm.nih.gov/pubmed/35528597
http://dx.doi.org/10.1039/c9ra05078g
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