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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)...
Autores principales: | , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
The Royal Society of Chemistry
2019
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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. |
format | Online Article Text |
id | pubmed-9070609 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2019 |
publisher | The Royal Society of Chemistry |
record_format | MEDLINE/PubMed |
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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