Study on the Microstructure and Properties of Nb/ZrO2/HA Composite Coatings by Plasma Spraying Process Parameters
Highlights
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- Nb/ZrO2/HA composite coatings were successfully fabricated on ZK60 magnesium alloy via plasma spraying under different powers and powder feeding rates.
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- The surface hardness of the composite coatings increased as the power increased and the powder feeding rate decreased.
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- Coated surfaces changed from hydrophobic (substrate) to hydrophilic and showed significantly improved corrosion resistance, which was enhanced by lower roughness and higher hardness.
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- Under optimized parameters (33 kW, 18 g/min), the coating exhibited a dense, flat morphology, with hardness and corrosion resistance increased by 28% and 56% respectively compared to pure HA coating.
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- Doping Nb into ZrO2/HA coatings effectively enhanced cell activity and biological performance.
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- Plasma spraying parameters can be flexibly adjusted to tailor the hardness and corrosion resistance of composite coatings on magnesium alloys.
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- The prepared Nb/ZrO2/HA coating improves surface wettability and corrosion protection, which is beneficial for the service performance of ZK60 magnesium alloy.
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- Optimized spraying parameters enable the preparation of dense, low-roughness coatings with significantly improved mechanical and anticorrosive properties.
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- Nb doping provides a feasible strategy to enhance the biological activity of HA-based composite coatings.
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- This coating design shows potential for biomedical applications of magnesium alloys, though further biological verification is still required for clinical translation.
Abstract
1. Introduction
2. Materials and Methods
2.1. Material and Deposition of Coatings
2.2. Characterization of Coatings
2.3. Corrosion Behavior Analysis
2.4. Weight Loss Test
2.5. Cytocompatibility Evaluation
3. Results and Discussion
3.1. Morphology and Composition of the Coating
3.2. Analysis of Surface Properties
3.3. Corrosion Behavior Analysis
3.4. Cell Culture Experiment
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Serial Number | Spraying Power (kW) | Constant | Powder Feed Rate (g/min) | ||
|---|---|---|---|---|---|
| Main Gas Flow (Ar2 L/min) | Auxiliary Gas Flow (H2 L/min) | Spraying Distance (mm) | |||
| 1 | 31 | 40 | 10 | 80 | 18 |
| 2 | 33 | 40 | 10 | 80 | 18 |
| 3 | 35 | 40 | 10 | 80 | 18 |
| 4 | 33 | 40 | 10 | 80 | 15 |
| 5 | 33 | 40 | 10 | 80 | 20 |
| Serial Number | Ecorr (V) | Icorr (A·cm−2) | βα (V/decade) | βc (V/decade) | Rp (Ω·cm2) | PE (%) |
|---|---|---|---|---|---|---|
| Mg | −1.649 | 1.030 × 10−2 | 6.076 | 5.317 | 119.70 | — |
| HA | −1.490 | 1.169 × 10−3 | 5.192 | 4.356 | 911.39 | 88.65 |
| 31 kW | −1.450 | 1.130 × 10−3 | 6.182 | 4.322 | 980.44 | 89.03 |
| 33 kW | −1.364 | 5.109 × 10−4 | 8.062 | 4.919 | 2599.85 | 95.04 |
| 35 kW | −1.433 | 1.086 × 10−3 | 6.688 | 4.315 | 993.34 | 89.46 |
| 15 g/min | −1.449 | 1.128 × 10−3 | 6.275 | 4.356 | 985.79 | 89.05 |
| 18 g/min | −1.364 | 5.109 × 10−4 | 8.062 | 4.919 | 2599.85 | 95.04 |
| 20 g/min | −1.488 | 1.156 × 10−3 | 4.656 | 4.976 | 962.98 | 88.78 |
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Sun, S.; Li, J.; Gu, H.; Xu, G.; Ge, R. Study on the Microstructure and Properties of Nb/ZrO2/HA Composite Coatings by Plasma Spraying Process Parameters. Coatings 2026, 16, 525. https://doi.org/10.3390/coatings16050525
Sun S, Li J, Gu H, Xu G, Ge R. Study on the Microstructure and Properties of Nb/ZrO2/HA Composite Coatings by Plasma Spraying Process Parameters. Coatings. 2026; 16(5):525. https://doi.org/10.3390/coatings16050525
Chicago/Turabian StyleSun, Shugang, Jiaqi Li, Hai Gu, Guifang Xu, and Rongrong Ge. 2026. "Study on the Microstructure and Properties of Nb/ZrO2/HA Composite Coatings by Plasma Spraying Process Parameters" Coatings 16, no. 5: 525. https://doi.org/10.3390/coatings16050525
APA StyleSun, S., Li, J., Gu, H., Xu, G., & Ge, R. (2026). Study on the Microstructure and Properties of Nb/ZrO2/HA Composite Coatings by Plasma Spraying Process Parameters. Coatings, 16(5), 525. https://doi.org/10.3390/coatings16050525

