Cargando…

The Influence of Surface Preparation, Chewing Simulation, and Thermal Cycling on the Phase Composition of Dental Zirconia

The effect of dental technical tools on the phase composition and roughness of 3/4/5 yttria-stabilized tetragonal zirconia polycrystalline (3y-/4y-/5y-TZP) for application in prosthetic dentistry was investigated. Additionally, the X-ray diffraction methods of Garvie-Nicholson and Rietveld were comp...

Descripción completa

Detalles Bibliográficos
Autores principales: Wertz, Markus, Fuchs, Florian, Hoelzig, Hieronymus, Wertz, Julia Maria, Kloess, Gert, Hahnel, Sebastian, Rosentritt, Martin, Koenig, Andreas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8122781/
https://www.ncbi.nlm.nih.gov/pubmed/33922280
http://dx.doi.org/10.3390/ma14092133
_version_ 1783692713781100544
author Wertz, Markus
Fuchs, Florian
Hoelzig, Hieronymus
Wertz, Julia Maria
Kloess, Gert
Hahnel, Sebastian
Rosentritt, Martin
Koenig, Andreas
author_facet Wertz, Markus
Fuchs, Florian
Hoelzig, Hieronymus
Wertz, Julia Maria
Kloess, Gert
Hahnel, Sebastian
Rosentritt, Martin
Koenig, Andreas
author_sort Wertz, Markus
collection PubMed
description The effect of dental technical tools on the phase composition and roughness of 3/4/5 yttria-stabilized tetragonal zirconia polycrystalline (3y-/4y-/5y-TZP) for application in prosthetic dentistry was investigated. Additionally, the X-ray diffraction methods of Garvie-Nicholson and Rietveld were compared in a dental restoration context. Seven plates from two manufacturers, each fabricated from commercially available zirconia (3/4/5 mol%) for application as dental restorative material, were stressed by different dental technical tools used for grinding and polishing, as well as by chewing simulation and thermocycling. All specimens were examined via laser microscopy (surface roughness) and X-ray diffraction (DIN EN ISO 13356 and the Rietveld method). As a result, the monoclinic phase fraction was halved by grinding for the 3y-TZP and transformed entirely into one of the tetragonal phases by polishing/chewing for all specimens. The tetragonal phase t is preferred for an yttria content of 3 mol% and phase t″ for 5 mol%. Mechanical stress, such as polishing or grinding, does not trigger low-temperature degradation (LTD), but it fosters a phase transformation from monoclinic to tetragonal under certain conditions. This may increase the translucency and deteriorate the mechanical properties to some extent.
format Online
Article
Text
id pubmed-8122781
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-81227812021-05-16 The Influence of Surface Preparation, Chewing Simulation, and Thermal Cycling on the Phase Composition of Dental Zirconia Wertz, Markus Fuchs, Florian Hoelzig, Hieronymus Wertz, Julia Maria Kloess, Gert Hahnel, Sebastian Rosentritt, Martin Koenig, Andreas Materials (Basel) Article The effect of dental technical tools on the phase composition and roughness of 3/4/5 yttria-stabilized tetragonal zirconia polycrystalline (3y-/4y-/5y-TZP) for application in prosthetic dentistry was investigated. Additionally, the X-ray diffraction methods of Garvie-Nicholson and Rietveld were compared in a dental restoration context. Seven plates from two manufacturers, each fabricated from commercially available zirconia (3/4/5 mol%) for application as dental restorative material, were stressed by different dental technical tools used for grinding and polishing, as well as by chewing simulation and thermocycling. All specimens were examined via laser microscopy (surface roughness) and X-ray diffraction (DIN EN ISO 13356 and the Rietveld method). As a result, the monoclinic phase fraction was halved by grinding for the 3y-TZP and transformed entirely into one of the tetragonal phases by polishing/chewing for all specimens. The tetragonal phase t is preferred for an yttria content of 3 mol% and phase t″ for 5 mol%. Mechanical stress, such as polishing or grinding, does not trigger low-temperature degradation (LTD), but it fosters a phase transformation from monoclinic to tetragonal under certain conditions. This may increase the translucency and deteriorate the mechanical properties to some extent. MDPI 2021-04-22 /pmc/articles/PMC8122781/ /pubmed/33922280 http://dx.doi.org/10.3390/ma14092133 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
Wertz, Markus
Fuchs, Florian
Hoelzig, Hieronymus
Wertz, Julia Maria
Kloess, Gert
Hahnel, Sebastian
Rosentritt, Martin
Koenig, Andreas
The Influence of Surface Preparation, Chewing Simulation, and Thermal Cycling on the Phase Composition of Dental Zirconia
title The Influence of Surface Preparation, Chewing Simulation, and Thermal Cycling on the Phase Composition of Dental Zirconia
title_full The Influence of Surface Preparation, Chewing Simulation, and Thermal Cycling on the Phase Composition of Dental Zirconia
title_fullStr The Influence of Surface Preparation, Chewing Simulation, and Thermal Cycling on the Phase Composition of Dental Zirconia
title_full_unstemmed The Influence of Surface Preparation, Chewing Simulation, and Thermal Cycling on the Phase Composition of Dental Zirconia
title_short The Influence of Surface Preparation, Chewing Simulation, and Thermal Cycling on the Phase Composition of Dental Zirconia
title_sort influence of surface preparation, chewing simulation, and thermal cycling on the phase composition of dental zirconia
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8122781/
https://www.ncbi.nlm.nih.gov/pubmed/33922280
http://dx.doi.org/10.3390/ma14092133
work_keys_str_mv AT wertzmarkus theinfluenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT fuchsflorian theinfluenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT hoelzighieronymus theinfluenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT wertzjuliamaria theinfluenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT kloessgert theinfluenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT hahnelsebastian theinfluenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT rosentrittmartin theinfluenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT koenigandreas theinfluenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT wertzmarkus influenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT fuchsflorian influenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT hoelzighieronymus influenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT wertzjuliamaria influenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT kloessgert influenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT hahnelsebastian influenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT rosentrittmartin influenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia
AT koenigandreas influenceofsurfacepreparationchewingsimulationandthermalcyclingonthephasecompositionofdentalzirconia