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  4. Increasing dental zirconia micro-retentive aspect through ultra-short pulsed laser microstructuring
 
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2022
Journal Article
Title

Increasing dental zirconia micro-retentive aspect through ultra-short pulsed laser microstructuring

Title Supplement
Study on flexural strength and crystal phase characterization
Abstract
Objectives
Although ultra-short pulsed laser (USPL) microstructuring has previously improved zirconia bond-strength, it is yet unclear how different laser-machined surface microstructures and patterns may influence the material’s mechanical properties. Therefore, the aim of this study was to assess the flexural strength of zirconia after different USPL settings creating three different geometrical patterns with structures in micrometer scale.
Methods
One hundred sixty zirconia bars (3Y-TZP, 21 × 4 × 2.1 mm) were prepared and randomly divided into five groups (n = 32): no surface treatment (negative control-NC); sandblasting with Al2O3 (SB); and three laser groups irradiated with USPL (Nd:YVO4/1064 nm/2-34 J/cm2/12 ps): crossed-lines (LC), random-hatching (LR), and parallel-waves (LW). Bars were subjected to a four-point flexural test (1 mm/min) and crystal phase content changes were identified by X-ray diffraction. Surface roughness and topography were analyzed through 3D-laser-profilometry and SEM. Data were analyzed with parametric tests for roughness and Weibull for flexural strength (α = 5%).
Results
LR (Mean[95%CI]: 852.0 MPa, [809.2–894.7]) was the only group that did not show a significantly different flexural strength than NC (819.8 MPa, [796.6–842.9]), (p > 0.05). All laser groups exhibited higher Weibull moduli than NC and SB, indicating higher reliability and homogeneity of the strength data. An increase of monoclinic phase peak was only observed for SB.
Conclusion
In conclusion, USPL created predictable, homogeneous, highly reproducible, and accurate surface microstructures on zirconia ceramic. The laser-settings of random-hatching (12 ps pulses) increased 3Y-TZP average surface roughness similarly to SB, while not causing deleterious crystal phase transformation or loss of flexural strength of the material. Furthermore, it has increased the Weibull modulus and consequently material’s reliability.
Clinical significance
Picosecond laser microstructuring (LR conditions) of 3Y-TZP ceramic does not decrease its flexural strength, while increasing materials realiability and creating highly reproducible and accurate microstructures. These features may be of interest both for improving clinical survival of zirconia restorations as well as enhancing longevity of zirconia implants.
Author(s)
Assimakopoulos Garófalo, Stephanie
Wehner, Martin  
Fraunhofer-Institut für Lasertechnik ILT  
Dohrn, Andreas  
Fraunhofer-Institut für Lasertechnik ILT  
Bilandzic, Marin Dean
Roos, Christian
Wierichs, Richard Johannes
Meyer-Lueckel, Hendrik
Corrêa Aranha, Ana Cecilia
Esteves-Oliveira, Marcella
Journal
Clinical oral investigations  
Open Access
DOI
10.1007/s00784-021-04077-2
Additional link
Full text
Language
English
Fraunhofer-Institut für Lasertechnik ILT  
Keyword(s)
  • Yttria-stabilized tetragonal zirconia

  • lasers

  • Dental materials

  • Zirconia conditioning

  • XRD

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