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Production of High Silicon-Doped Hydroxyapatite Thin Film Coatings via Magnetron Sputtering: Deposition, Characterisation, and In Vitro Biocompatibility

Coe, Samuel C.; Wadge, Matthew D.; Felfel, Reda M.; Ahmed, Ifty; Walker, Gavin S.; Scotchford, Colin A.; Grant, David M.

Authors

Samuel C. Coe

Reda M. Felfel

Gavin S. Walker

DAVID GRANT DAVID.GRANT@NOTTINGHAM.AC.UK
Professor of Materials Science



Abstract

In recent years, it has been found that small weight percent additions of silicon to HA can be used to enhance the initial response between bone tissue and HA. A large amount of research has been concerned with bulk materials, however, only recently has the attention moved to the use of these doped materials as coatings. This paper focusses on the development of a co-RF and pulsed DC magnetron sputtering methodology to produce a high percentage Si containing HA (SiHA) thin films (from1.8 to 13.4 wt. %; one of the highest recorded in the literature to date). As deposited thin films were found to be amorphous, but crystallised at different annealing temperatures employed, dependent on silicon content, which also lowered surface energy profiles destabilising the films. X-ray photoelectron spectroscopy (XPS) was used to explore the structure of silicon within the films which were found to be in a polymeric (SiO2; Q4) state. However, after annealing, the films transformed to a SiO44- Q0, state, indicating that silicon had substituted into the HA lattice at higher concentrations than previously reported. A loss of hydroxyl groups and the maintenance of a single-phase HA crystal structure further provided evidence for silicon substitution. Furthermore, a human osteoblast cell (HOB) model was used to explore the in vitro cellular response. The cells appeared to prefer the HA surfaces compared to SiHA surfaces, which was thought to be due to the higher solubility of SiHA surfaces inhibiting protein mediated cell attachment. The extent of this effect was found to be dependent on film crystallinity and silicon content.

Journal Article Type Article
Acceptance Date Feb 20, 2020
Online Publication Date Feb 23, 2020
Publication Date 2020-02
Deposit Date Apr 17, 2023
Publicly Available Date Apr 18, 2023
Journal Coatings
Electronic ISSN 2079-6412
Publisher MDPI
Peer Reviewed Peer Reviewed
Volume 10
Issue 2
Article Number 190
DOI https://doi.org/10.3390/coatings10020190
Public URL https://nottingham-repository.worktribe.com/output/19692094
Publisher URL https://www.mdpi.com/2079-6412/10/2/190

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