Evaluation of Sputtered Mo–Cu–Cr–N Coatings Prepared at Different N2 Gas Flow Rates Using a Multicomponent Single-Alloy Target
Abstract
:1. Introduction
2. Materials and Methods
2.1. Coating Deposition
2.2. Coating Characterization and Friction Tests
3. Results and Discussion
3.1. Microstructure
3.2. Crystal Structure
3.3. Composition
3.4. Mechanical Properties
3.5. Friction Behavior
3.6. Corrosion
4. Conclusions
- SEM and XRD analyses revealed that the coatings prepared at low nitrogen flow rates (0 and 3 sscm of N2 gas rate) had a columnar structure with no nitride phases. In contrast, the coatings prepared at nitrogen flow rates of 6–18 sccm had a featureless and dense coating structure.
- In the coating prepared at a gas ratio of Ar: N2 = (24:12), all the Mo and Cr formed nitride phases; thus, this flow rate was determined to be optimal. However, when nitrogen was added in excess at a flow rate of 18 sccm, broad peaks indicating an almost amorphous structure were observed in the XRD patterns.
- The Mo–Cu–Cr–N coating prepared at a gas ratio of Ar: N2 = (24:12) had a high hardness value (30.4 ± 1.2 GPa) and the highest fracture toughness value (>0.1) because of the formation of crystalline (Mo,Cr)2N phases.
- The stabilized coefficient of friction was approximately 0.003 for the samples prepared at a gas ratio of Ar: N2 = (24:12), confirming the low friction characteristics of the coatings in a lubricating PAO environment. The surface roughness values before and after the friction tests were mostly unchanged, confirming the excellent wear resistance.
- The lowest potential voltage and the highest corrosion current were obtained for the uncoated substrate and the coating prepared at a gas ratio of Ar: N2 = (33:3), which has a columnar coating structure and poor mechanical properties, revealing their low corrosion potentials and poor protective efficiency.
- The highest corrosion potential and protective efficiency were obtained for the sample with a prepared gas ratio of Ar: N2 = (24:12), due to containing a highly crystalline Mo2N phase with a grain size of approximately 6 nm, as well as a Cr2N phase, and a fine nanocomposite microstructure.
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Kim, S.; An, K.W.; Yoon, H.W.; Park, H.J.; Moon, K.I.; Lee, C.S. Evaluation of Sputtered Mo–Cu–Cr–N Coatings Prepared at Different N2 Gas Flow Rates Using a Multicomponent Single-Alloy Target. Coatings 2022, 12, 371. https://doi.org/10.3390/coatings12030371
Kim S, An KW, Yoon HW, Park HJ, Moon KI, Lee CS. Evaluation of Sputtered Mo–Cu–Cr–N Coatings Prepared at Different N2 Gas Flow Rates Using a Multicomponent Single-Alloy Target. Coatings. 2022; 12(3):371. https://doi.org/10.3390/coatings12030371
Chicago/Turabian StyleKim, Soobyn, Ki Won An, Hae Won Yoon, Hyun Jun Park, Kyoung Il Moon, and Caroline Sunyong Lee. 2022. "Evaluation of Sputtered Mo–Cu–Cr–N Coatings Prepared at Different N2 Gas Flow Rates Using a Multicomponent Single-Alloy Target" Coatings 12, no. 3: 371. https://doi.org/10.3390/coatings12030371
APA StyleKim, S., An, K. W., Yoon, H. W., Park, H. J., Moon, K. I., & Lee, C. S. (2022). Evaluation of Sputtered Mo–Cu–Cr–N Coatings Prepared at Different N2 Gas Flow Rates Using a Multicomponent Single-Alloy Target. Coatings, 12(3), 371. https://doi.org/10.3390/coatings12030371