| Literature DB >> 29978323 |
Rong Hu1, Yongyao Su2, Yurong Liu2, Hongdong Liu3, Yingmin Chen2, Changsheng Cao4, Haitao Ni5,6.
Abstract
To improve the corrosion resistance and wear resistance of electroless nickel-phosphorus (Ni-P) coating on magnesium (Mg) alloy. Ni-P-Al2O3 coatings were produced on Mg alloy from a composite plating bath. The optimum Al2O3 concentration was determined by the properties of plating bath and coatings. Morphology growth evolution of Ni-P-Al2O3 composite coatings at different times was observed by using a scanning electronic microscope (SEM). The results show that nano-Al2O3 particles may slow down the replacement reaction of Mg and Ni2+ in the early stage of the deposition process, but it has almost no effect on the rate of Ni-P auto-catalytic reduction process. The anti-corrosion and micro-hardness tests of coatings reveal that the Ni-P-Al2O3 composite coatings exhibit better performance compared with Ni-P coating owing to more appropriate crystal plane spacing and grain size of Ni-P-Al2O3 coatings. Thermal shock test indicates that the Al2O3 particles have no effect on the adhesion of coatings. In addition, the service life of composite plating bath is 4.2 metal turnover, suggesting it has potential application in the field of magnesium alloy.Entities:
Keywords: Deposition process; Magnesium alloy; Nano-Al2O3 particles; Ni-P-Al2O3 composite coatings; Property
Year: 2018 PMID: 29978323 PMCID: PMC6033849 DOI: 10.1186/s11671-018-2608-0
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Effects of process parameters on deposition rate and Al2O3 content of coatings
Fig. 2Surface morphology of Ni-P coating (top, a-c) and Ni-P-Al2O3 composite coatings (bottom, d-f) at different deposition times
Fig. 3XRD patterns of the AZ91D substrate, Ni-P coating, and Ni-P-Al2O3 (3.6 wt%) composite coatings
The characteristic parameters of diffraction peak of Ni-P (111) in the Ni-P coating and Ni-P-Al2O3 (3.6 wt%) coatings
| Coatings | Intensity | Peak | FWHM |
|---|---|---|---|
| Ni-P coating | 1424.7 | 44.7 ± 0.01 | 4.97 |
| Ni-P-Al2O3 coating | 1205.4 | 45.2 ± 0.01 | 5.36 |
Fig. 4Polarization curves of the AZ91D substrate, the Ni-P coating, and the Ni-P-Al2O3 composite coatings
Electrochemical corrosion data related to polarization curves of the magnesium alloy, the Ni-P coating, and the Ni-P-Al2O3 composite coatings
| Substrate and coatings | AZ91D | Ni-P | Ni-P-Al2O3 (1.7%) | Ni-P-Al2O3 (3.6%) | Ni-P-Al2O3 (4.2%) |
|---|---|---|---|---|---|
| 1.4 × 10−4 | 3.1 × 10−6 | 1.6 × 10−6 | 4.5 × 10−7 | 1.0 × 10−6 | |
| − 1.46 | − 0.51 | − 0.47 | − 0.35 | − 0.41 |
Fig. 5Hardness of the AZ91D substrate, the Ni-P coating, and the Ni-P-Al2O3 composite coatings
Fig. 6Cross-section morphology images of the Ni-P coating (a) and Ni-P-Al2O3 (3.6 wt%) composite coatings (b)
Fig. 7The EDS spectra of the Ni-P coating and the Ni-P-Al2O3 composite coatings