Galvanic Deposition of Calcium Phosphate/Bioglass Composite Coating on AISI 316L

Author:

Zanca Claudio1,Milazzo Alessandro1ORCID,Campora Simona2ORCID,Capuana Elisa1,Pavia Francesco Carfì13ORCID,Patella Bernardo1,Lopresti Francesco1,Brucato Valerio1ORCID,La Carrubba Vincenzo14ORCID,Inguanta Rosalinda1ORCID

Affiliation:

1. Department of Engineering, University of Palermo, Viale delle Scienze, 90128 Palermo, Italy

2. Department of Biological, Chemical and Pharmaceutical Science and Technologies, University of Palermo, Viale delle Scienze, Ed. 16, 90128 Palermo, Italy

3. Consorzio Universitario di Caltanissetta, Corso Vittorio Emanuele 92, 93100 Caltanissetta, Italy

4. ATeN Center, University of Palermo, Viale delle Scienze, 90133 Palermo, Italy

Abstract

Calcium phosphate/Bioglass composite coatings on AISI 316L were investigated with regard to their potential role as a beneficial coating for orthopedic implants. These coatings were realized by the galvanic co-deposition of calcium phosphate compounds and Bioglass particles. A different amount of Bioglass 45S5 was used to study its effect on the performance of the composite coatings. The morphology and chemical composition of the coatings were investigated before and after their aging in simulated body fluid. The coatings uniformly covered the AISI 316L substrate and consisted of a brushite and hydroxyapatite mixture. Both phases were detected using X-ray diffraction and Raman spectroscopy. Additionally, both analyses revealed that brushite is the primary phase. The presence of Bioglass was verified through energy-dispersive X-ray spectroscopy, which showed the presence of a silicon peak. During aging in simulated body fluid, the coating was subject to a dynamic equilibrium of dissolution/reprecipitation with total conversion in only the hydroxyapatite phase. Corrosion tests performed in simulated body fluid at different aging times revealed that the coatings made with 1 g/L of Bioglass performed best. These samples have a corrosion potential of −0.068V vs. Ag/AgCl and a corrosion current density of 8.87 × 10−7 A/cm2. These values are better than those measured for bare AISI 316L (−0.187 V vs. Ag/AgCl and 2.52 × 10−6 A/cm2, respectively) and remained superior to pure steel for all 21 days of aging. This behavior indicated the good protection of the coating against corrosion phenomena, which was further confirmed by the very low concentration of Ni ions (0.076 ppm) released in the aging solution after 21 days of immersion. Furthermore, the absence of cytotoxicity, verified through cell viability assays with MC3T3-E1 osteoblastic cells, proves the biocompatibility of the coatings.

Publisher

MDPI AG

Subject

Materials Chemistry,Surfaces, Coatings and Films,Surfaces and Interfaces

Reference112 articles.

1. Carter, C.B., and Norton, M.G. (2007). Ceramic Materials: Science and Engineering, Springer Science+Business Media, LLC Springer e-books.

2. Pomeroy, M., and Cambier, F. (2021). Encyclopedia of Materials: Technical Ceramics and Glasses, Elsevier.

3. Hojo, J. (2019). Materials Chemistry of Ceramics, Springer.

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5. Osaka, A., and Narayan, R. (2021). Bioceramics: From Macro to Nanoscale, Elsevier.

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