2013
DOI: 10.1016/j.ceramint.2012.06.011
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A novel foam-like silane modified alumina scaffold coated with nano-hydroxyapatite–poly(ε-caprolactone fumarate) composite layer

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Cited by 28 publications
(12 citation statements)
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“…The obtained results are in a good agreement with the studies conducted by other researchers on the anodized AZ91 alloy [37]. Besides increasing the corrosion resistance of AZ91 substrate, the presence of uneven porous layer on the surface improves the adhesion of the polymer coating to the substrate [38]. As can be seen in Figure 3c, applying the polymer coating formed a smooth and uniform layer on the surface.…”
Section: Resultssupporting
confidence: 90%
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“…The obtained results are in a good agreement with the studies conducted by other researchers on the anodized AZ91 alloy [37]. Besides increasing the corrosion resistance of AZ91 substrate, the presence of uneven porous layer on the surface improves the adhesion of the polymer coating to the substrate [38]. As can be seen in Figure 3c, applying the polymer coating formed a smooth and uniform layer on the surface.…”
Section: Resultssupporting
confidence: 90%
“…One of the important benefits of applying a coating on the metal implants, is to facilitate the ingrowth and penetration of surrounding tissue into the coating and subsequently provide appropriate bonds between the implant and the surrounding tissue. This will be possible if an appropriate surface roughness is developed on the surface so that the tissue can adhere to the coating [38]. As can be seen, applying the polymer coating reduced the surface roughness, whereas addition of baghdadite nanoparticles increased the surface roughness, and created an uneven and porous surface, which will be appropriate for biostability, initial adhesion, and the growth of tissue.…”
Section: Resultsmentioning
confidence: 99%
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“…Su aplicación en catálisis está ampliamente extendida, debido a la superficie específica y a las propiedades ácidas que presenta (17), usándose como catalizador activo, por ejemplo en las reacciones tipo Claus para transformar el sulfuro de hidrógeno en azufre (18,19), pero especialmente como soporte de catalizadores (20,21), empleado en diferentes procesos industriales, como en la hidrodesulfuración del petróleo (22), en la síntesis de óxido de etileno (23), o en la oxidación de metano (24), entre otros muchos ejemplos recopilados por Fierro (17a). Asimismo, debido a su inercia química y su alta resistencia mecánica (25)(26)(27), la alúmina también ha sido utilizada en implantes y prótesis debido a su comprobada biocompatibilidad (28)(29)(30)(31), resultando ser su estructura porosa un factor clave en muchas de las investigaciones relacionadas con el aumento de la capacidad de osteointegración de la alúmina (32)(33)(34)(35)(36).…”
Section: Transformación De Fasesunclassified