Monitoring of Carbonated Hydroxyapatite Growth on Modified Polycrystalline CVD-Diamond Coatings on Titanium Substrates

Author:

Carcione Rocco12,Guglielmotti Valeria1,Mura Francesco34ORCID,Orlanducci Silvia1,Tamburri Emanuela15ORCID

Affiliation:

1. Dipartimento di Scienze e Tecnologie Chimiche & UdR INSTM di Roma, Università degli Studi di Roma “Tor Vergata”, Via della Ricerca Scientifica, 00133 Rome, Italy

2. ENEA, Fusion and Technology for Nuclear Safety and Security Department, C.R. Casaccia, Via Anguillarese 301, 00123 Rome, Italy

3. Department of Basic and Applied Sciences for Engineering (SBAI), University of Rome “Sapienza”, Via Antonio Scarpa 14, 00161 Rome, Italy

4. Center for Nanotechnology Applied to Industry (CNIS), University of Rome “Sapienza”, 00185 Rome, Italy

5. Center for Regenerative Medicine (CIMER), University of Rome “Tor Vergata”, Via Montpellier 1, 00133 Rome, Italy

Abstract

Production of diamond coatings on titanium substrates has demonstrated as a promising strategy for applications ranging from biosensing to hard tissue engineering. The present study focuses on monitoring the nucleation and growth of bone-like carbonated-hydroxyapatite (C-HA) on polycrystalline diamond (PCD) synthetized on titanium substrate by means of a hot filament chemical vapor deposition (HF-CVD) method. The surface terminations of diamond coatings were selectively modified by oxidative treatments. The process of the C-HA deposition, accomplished by precipitation from simulated body fluid (SBF), was monitored from 3 to 20 days by Raman spectroscopy analysis. The coupling of morphological and structural investigations suggests that the modulation of the PCD surface chemistry enhances the bioactivity of the produced materials, allowing for the formation of continuous C-HA coatings with needle-like texture and chemical composition typical of those of the bone mineral. Specifically, after 20 days of immersion in SBF the calculated carbonate weight percent and the Ca/P ratio are 5.5% and 2.1, respectively. Based on these results, this study brings a novelty in tailoring the CVD-diamond properties for advanced biomedical and technological applications.

Publisher

MDPI AG

Subject

Inorganic Chemistry,Condensed Matter Physics,General Materials Science,General Chemical Engineering

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