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Fracture Resistance of a Two-Piece Zirconia Implant System after Artificial Loading and/or Hydrothermal Aging—An In Vitro Investigation
University of Freiburg, Germany.
University of Freiburg, Germany.
RISE Research Institutes of Sweden, Materials and Production, Manufacturing Processes.ORCID iD: 0000-0003-4860-8763
University of Freiburg, Germany.
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2023 (English)In: Journal of Functional Biomaterials, E-ISSN 2079-4983, Vol. 14, no 12, article id 567Article in journal (Refereed) Published
Abstract [en]

The purpose of the present study was to assess the fracture resistance of a two-piece alumina-toughened zirconia implant system with a carbon-reinforced PEEK abutment screw. Methods: Thirty-two implants with screw-retained zirconia abutments were divided into four groups of eight samples each. Group 0 (control group) was neither loaded nor aged in a chewing simulator; group H was hydrothermally aged; group L was loaded with 98 N; and group HL was subjected to both hydrothermal aging and loading in a chewing simulator. One sample of each group was evaluated for t-m phase transformation, and the others were loaded until fracture. A one-way ANOVA was applied to evaluate differences between the groups. Results: No implant fracture occurred during the artificial chewing simulation. Furthermore, there were no statistically significant differences (p > 0.05) between the groups in terms of fracture resistance (group 0: 783 ± 43 N; group H: 742 ± 43 N; group L: 757 ± 86 N; group HL: 740 ± 43 N) and bending moment (group 0: 433 ± 26 Ncm; group H: 413 ± 23 Ncm; group L: 422 ± 49 Ncm; group HL: 408 ± 27 Ncm). Conclusions: Within the limitations of the present investigation, it can be concluded that artificial loading and hydrothermal aging do not reduce the fracture resistance of the investigated implant system. 

Place, publisher, year, edition, pages
Multidisciplinary Digital Publishing Institute (MDPI) , 2023. Vol. 14, no 12, article id 567
Keywords [en]
polyetheretherketone; zirconium oxide; aging; Article; controlled study; fracture resistance; hydrothermal aging; in vitro study; nonhuman; physical chemistry; scanning electron microscopy; trabecular bone
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Health Sciences
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URN: urn:nbn:se:ri:diva-69326DOI: 10.3390/jfb14120567Scopus ID: 2-s2.0-85180649396OAI: oai:DiVA.org:ri-69326DiVA, id: diva2:1827877
Available from: 2024-01-15 Created: 2024-01-15 Last updated: 2024-05-02Bibliographically approved

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