| Literature DB >> 31936775 |
Stefania Stoleriu1, Codruta Lungu2, Cristina Daniela Ghitulica1, Adrian Surdu1, Georgeta Voicu1, Andreia Cucuruz2, Claudiu Stefan Turculet3, Lucian Toma Ciocan4.
Abstract
In this paper, ZnO and Co2+/Mg2+-doped ZnO thin films on TiAlV alloy substrates were obtained. The films were deposited by spin coating of sol-gel precursor solutions and thermally treated at 600 °C for 2 h, in air and slow cooled. The doping ions concentration was 1.0 mol%. The study's aim was to obtain implantable metallic materials with improved biocompatibility and antibacterial qualities. The characteristics of the thin films were assessed from the point of view of microstructure, morphology, wetting properties, antibacterial activity and biological response in the presence of amniotic fluid stem cells (AFSC). The results proved that all deposited samples were nanostructured, suggesting a very good antibacterial effect and proving to be suitable supports for cellular adhesion and proliferation. All properties also depended on the doping ion nature.Entities:
Keywords: ZnO thin film; antibacterial test; in-vitro test; spin coating
Year: 2020 PMID: 31936775 PMCID: PMC7022926 DOI: 10.3390/nano10010129
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1X-ray diffraction (XRD) patterns for undoped and Co2+/Mg2+doped ZnO films coatings on grade TiAlV alloy thermally treated at 600 °C for 2 h.
Figure 2Raman spectra for undoped and Co2+/Mg2+−doped ZnO films coatings on grade TiAlV alloy substrate thermally treated at 600 °C for 2 h.
Figure 3Scanning electron microscope (SEM) images (a–d) and grain size distribution (e) for ZnO coating.
Figure 4SEM images (a–d) and grain size distribution ((e)—quasi-spherical particles; (f)—rods shape agglomerates) for Co2+ doped ZnO coating.
Figure 5SEM images (a–c) and grain size distribution (d) for Mg2+-doped ZnO coating.
Figure 6The contact angle and free energy for TiAlV alloy substrate and undoped and Co2+/Mg2+ doped ZnO films coatings on that, at thermally treated at 600 °C for 2 h.
Figure 7The Staphylococcus aureus (S. aureus) biofilm development inhibition in the presence of undoped and Co2+/Mg2+-doped ZnO film coatings on TiAlV alloy substrate.
Figure 8The MTT assay on undoped and Co2+/Mg2+-doped ZnO films coatings on TiAlV alloy substrate.
Figure 9The fluorescence microscopy images performed on undoped and Co2+/Mg2+ doped ZnO films coatings on TiAlV alloy substrate.
Figure 10The glutathione (GSH) assay on undoped and Co2+/Mg2+-doped ZnO film coatings on TiAlV alloy substrate.