| Literature DB >> 29659504 |
Feng Li1, Xiaosong Jiang2, Zhenyi Shao3,4, Degui Zhu5, Minhao Zhu6.
Abstract
Biomaterial composites made of titanium andEntities:
Keywords: graphene; mechanical properties; microstructure; nano-hydroxyapatite; titanium alloy
Year: 2018 PMID: 29659504 PMCID: PMC5951492 DOI: 10.3390/ma11040608
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1The schematic diagram of the experiment.
Figure 2X-ray diffractograms of the milled powders with different contents of graphene nano-flakes (GNFs) (0.5, 1.0, and 1.5 wt %).
Figure 3(a,b) SEM micrographs of the 0.5-GNFsnanocomposites in different regions; and (c,d) SEM micrographs of the 1.0-GNFs and 1.5-GNFs nanocomposites, respectively.
The EDS results (at %) for regions 1 and 2 in Figure 3b.
| Region | O | P | Ca | Ti | Zr | Nb | La | Ta |
|---|---|---|---|---|---|---|---|---|
| 1 | 46.98 | 13.70 | 29.21 | 6.76 | 2.70 | 0.52 | --- | 0.13 |
| 2 | 69.18 | 8.38 | 14.71 | 3.39 | 2.42 | 1.73 | 0.01 | 0.18 |
Figure 4X-ray diffraction patterns of nanocomposites sintered at 1000 °C. A comparison with α-Ti standard card (44-1294) is shown in the upper left panel.
Figure 5(a,b) SEM micrographs of the 0.5-GNFs nanocomposite in different regions; and (c,d) SEM micrographs of the 1.0-GNFs and 1.5-GNFs nanocomposites, respectively.
Figure 6(a) SEM micrographs of the 0.5-GNFs nanocomposite sintered at 1000 °C. The corresponding mapping scanning results of elements: (b) Ti; (c) Ta; (d) Nb; (e) Zr; (f) P; (g) Ca; and (h) C.
Figure 7(a) SEM micrographs of the 0.5-GNFs nanocomposite sintered at 1000 °C. The corresponding mapping scanning results of electron probe microanalyzer (EPMA): (b) Ti; (c) Ta; (d) Nb; (e) Zr; (f) O; (g) P; (h) Ca; (i) C; and (j) La.
Figure 8(a) TEM image of the 1.5-GNFs nanocomposite sintered at 1000 °C; (b,c) the corresponding selected area diffraction (SAD) patterns of spots 1and 2; and (d–f) the corresponding EDS spectrums of spots 1–3.
Figure 9(a,b) TEM image of the 1.5-GNFs nanocomposite sintered at 1000 °C in different areas. The inset shows the SAD pattern of spot 1; and (c–f) the corresponding EDS spectrums of spots 1–4.
Figure 10Themicrohardness of the nanocomposites sintered at 1000 °C with different contents of GNFs.
Mechanical properties of the nanocomposites sintered at 1000 °C.
| Sample | Microhardness/HV | Compressive Strength/MPa | Shear Strength/MPa | |
|---|---|---|---|---|
| Front | Side | |||
| 0.5-GNFs | 105.10 | 106.71 | 178.08 | 37.45 |
| 1.0-GNFs | 75.39 | 70.63 | 140.76 | 30.60 |
| 1.5-GNFs | 64.32 | 65.57 | 145.04 | 28.56 |
Figure 11Compressive stress–strain curves of nanocomposites sintered at 1000 °C with different contents of GNFs.
Figure 12SEM micrographs of shear fracture surfaces of (a,b) the 0.5-GNFs nanocomposites in different regions; (c) the 1.0-GNFs nanocomposites; and (d) the 1.5-GNFs nanocomposites, respectively.
Figure 13SEM micrographs of shear fracture surfaces of (a) 1.0-GNFs; and (b) 1.5-GNFs nanocomposites sintered at 1000 °C, respectively.
The EDS results (at %) for regions A–E in Figure 13.
| Region | O | P | Ca | Ti | Zr | Nb | La | Ta |
|---|---|---|---|---|---|---|---|---|
| A | 61.91 | 1.97 | 5.83 | 0.76 | 1.58 | 27.83 | 0.06 | 0.05 |
| B | 41.34 | 1.46 | 0.61 | 55.19 | 0.40 | 0.94 | --- | 0.06 |
| C | 81.94 | 0.16 | 1.52 | 2.12 | 0.76 | 0.28 | 13.21 | --- |
| D | 41.81 | 1.69 | 4.37 | 10.75 | 0.02 | 2.81 | --- | 38.54 |
| E | 21.91 | 1.40 | 2.18 | 9.98 | 0 | 1.88 | --- | 62.85 |
Grain size of some phases in the 0.5-GNFs nanocomposite calculated by XRD Pattern Processing and Identification software.
| Element | Treatment Condition | 2 | Crystal Face | Grain Size/Å |
|---|---|---|---|---|
| α-Ti | milled for 5 h | 40.147/38.440/35.135 | (101)/(002)/(100) | 371/333/311 |
| sintered at 1000 °C | 39.818/37.777/34.885 | 441/470/399 | ||
| Ta/Nb | milled for 5 h | 38.440/69.664/55.625 | (110)/(211)/(200) | 333/272/275 |
| sintered at 1000 °C | 38.613/69.795/55.724 | 305/204/249 |