| Literature DB >> 31052573 |
Ziyu Ding1, Quanguo He2,3, Zeliang Ding4, Cuijiao Liao5, Dongchu Chen6, Ling Ou7.
Abstract
Ti6Al4VEntities:
Keywords: Ti6Al4V; adhesion strength; anti-inflammatory modification; antibacterial property; corrosion resistance; magnetron sputtering; tantalum oxide; zinc oxide
Year: 2019 PMID: 31052573 PMCID: PMC6566857 DOI: 10.3390/nano9050685
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1Schematic representation of ceramic composite coating structure: (a) TaO coating, (b) ZnO-TaO coating.
Deposition parameters.
| Coating Code | Layer Number | Coating Material | Sputtering Mode | Sputtering Power (W) | Deposition Time (min) | Gas flow (sccm) | ||
|---|---|---|---|---|---|---|---|---|
| Ar | O2 | |||||||
| ZnO-Ta | 1st layer | Ti | RF sputtering | 200 | 15 | 16 | / | |
| 2nd layer | TiO2 | RF reaction sputtering | 200 | 15 | 16 | 4 | ||
| 3rd layer | Ta | Ta | DC reaction sputtering | 250 | 15 | 24 | 6 | |
| TiO2 | RF reaction sputtering | 200 | ||||||
| 4th layer | Ta | DC reaction sputtering | 250 | 120 | 16 | 4 | ||
| 5th layer | ZnO-Ta | ZnO | RF sputtering | 150 | 15 | 16 | 4 | |
| Ta | DC reaction sputtering | 250 | ||||||
| Ta | / | Ta | DC reaction sputtering | 250 | 120 | 16 | 4 | |
Figure 2SEM images of the surface of uncoated and coated Ti6Al4V samples: (a) Ti6Al4V, (b) Ti, (c) TiO2, (d) TaxOy-TiO2, (e) ZnO-TaxOy, and (f) TaxOy.
Figure 3The cross-sectional SEM of coated Ti6Al4V samples of (a) TaxOy and (b) ZnO-TaxOy.
Figure 4XRD patterns of samples (a) and coated Ti6Al4V (b).
Figure 5Element mapping images of ZnO-TaxOy coating.
Figure 6EDS element image of the ZnO-TaxOy coating.
Figure 7(a) XPS survey spectrum of ZnO-TaxOy coating and high-resolution spectra of (b) Ta 4f, (c) O 1s, and (d) Zn 2p.
Figure 8(a) Friction force and load force as a function of scratch length for TaxOy coatings, (b) Scratch starting position, and (c) scratch end.
Figure 9(a) Friction force and load force as a function of scratch length for ZnO-TaxOy coatings, (b) scratch starting position, and (c) scratch end position.
Figure 10Potentiodynamic polarization curves of the uncoated and coated samples in SBF.
Corrosion parameters derived from polarization curves of Figure 10.
| Sample | Ti6Al4V | TaxOy | ZnO-TaxOy |
|---|---|---|---|
| Ecorr (V vs. Ag/AgCl) | –0.19 ± 0.02 | −0.11 ± 0.01 | 0.02 ± 0.01 |
| Icorr (μA/cm2) | 7.07 ± 0.012 | 3.85 ± 0.003 | 1.12 ± 0.004 |
Figure 11Contact angle measured for un-coated and coated Ti6Al4V samples.
Figure 12Images of S. aureus incubated on agar at 37 °C for 24 h on sample surface: (a) Ti6Al4V, (b) TaxOy, and (c) ZnO-TaxOy. Surface statistical of antibacterial rate (d).