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    Título
    Femtosecond laser microstructuring of zirconia dental implants
    Autor(es)
    Delgado-Ruíz, R. A.
    Calvo-Guirado, J. L.
    Moreno Pedraz, Pablo ManuelAutoridad USAL ORCID
    Guardia, J.
    Gomez-Moreno, G.
    Mate-Sánchez, J. E.
    Ramirez-Fernández, P.
    Chiva, F.
    Palabras clave
    zirconia
    dental implants
    femtosecond laser
    surface roughness
    X-ray diffraction
    Raman analysis
    Fecha de publicación
    2011-11
    Citación
    Delgado-Ruíz, R.A., Calvo-Guirado, J.L., Moreno, P., Guardia, J., Gomez-Moreno, G., Mate-Sánchez, J.E., Ramirez-Fernández, P. and Chiva, F. (2011), Femtosecond laser microstructuring of zirconia dental implants. J. Biomed. Mater. Res., 96B: 91-100. https://doi.org/10.1002/jbm.b.31743
    Resumen
    This study evaluated the suitability of femtosecond laser for microtexturizing cylindrical zirconia dental implants surface. Sixty-six cylindrical zirconia implants were used and divided into three groups: Control group (with no laser modification), Group A (microgropored texture), and Group B (microgrooved texture). Scanning electron microscopy observation of microgeometries revealed minimal collateral damage of the original surface surrounding the treated areas. Optical interferometric profilometry showed that ultrafast laser ablation increased surface roughness (Ra, Rq, Rz, and Rt) significantly for both textured patterns from 1.2× to 6×-fold when compared with the control group (p < 0.005). With regard to chemical composition, microanalysis revealed a significant decrease of the relative content of contaminants like carbon (Control 19.7% ± 0.8% > Group B 8.4% ± 0.42% > Group A 1.6% ± 0.35%) and aluminum (Control 4.3% ± 0.9% > Group B 2.3% ± 0.3% > Group A 1.16% ± 0.2%) in the laser-treated surfaces (p < 0.005). X-ray diffraction and Raman spectra analysis were carried out to investigate any change in the crystalline structure induced by laser processing. The original predominant tetragonal phase of zirconia was preserved, whereas the traces of monoclinic phase present in the treated surfaces were reduced (Control 4.32% > Group A 1.94% > Group B 1.72%) as the surfaces were processed with ultrashort laser pulses. We concluded that femtosecond laser microstructuring offers an interesting alternative to conventional surface treatments of zirconia implants as a result of its precision and minimal damage of the surrounding areas.
    URI
    https://hdl.handle.net/10366/146811
    ISSN
    1552-4973
    DOI
    10.1002/jbm.b.31743
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