Ultralow-Friction in Graphene–Nanodiamond Functionalized DLC Coatings: Transfer-Layer Evolution Under Variable Load and Humidity
Abstract
1. Introduction
2. Materials and Methods
2.1. Substrate and DLC Coating
2.2. Graphene and Nanodiamonds Deposition
2.3. Experimental Techniques
2.3.1. Raman Spectroscopy
2.3.2. Ball-on-Disk Tribometer
2.3.3. Optical Profilometry
2.3.4. Scanning Electron Microscopy (SEM) and Energy-Dispersive Spectroscopy (EDS) Analysis
3. Results and Discussions
3.1. DLC Film Characterization and Functionalization
3.2. Load and Environment Dependence of Friction
3.3. Wear Behavior of the DLC Disk
3.4. SS Ball Counterface Analysis
3.5. Friction Mechanisms
4. Conclusions
- •
- In dry N2, the synergistic action of GSs and NDs enables a robust low-friction regime, with the CoF remaining below 0.10 across the entire investigated load range. Increasing the normal load leads to a pronounced increase in wear and real contact area; however, this is not accompanied by a corresponding increase in friction, highlighting the key role of nanostructured carbon transfer layers.
- •
- The persistence of low friction under increasing load suggests that such nanostructured TLs can sustain low shear strength even under severe mechanical conditions, despite intensified abrasive wear.
- •
- In humid air, the tribological response is governed by oxidation processes affecting both the TL and the wear debris. The formation of oxide-rich TLs and the predominance of amorphous carbon result in higher friction levels that are largely insensitive to the applied normal load.
- •
- Although less effective than in dry N2, GS–ND functionalization still provides a measurable reduction in friction compared to pristine SS/DLC contacts, likely assisted by oxygen functionalization and physisorbed water molecules promoting boundary lubrication.
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Mescola, A.; Zanni, F.; Rota, A.; Bernini, C.; Gerbi, A.; Carzino, R.; Repetto, L.; Bartkowski, M.; Giordani, S.; Buzio, R.; et al. Ultralow-Friction in Graphene–Nanodiamond Functionalized DLC Coatings: Transfer-Layer Evolution Under Variable Load and Humidity. Lubricants 2026, 14, 184. https://doi.org/10.3390/lubricants14050184
Mescola A, Zanni F, Rota A, Bernini C, Gerbi A, Carzino R, Repetto L, Bartkowski M, Giordani S, Buzio R, et al. Ultralow-Friction in Graphene–Nanodiamond Functionalized DLC Coatings: Transfer-Layer Evolution Under Variable Load and Humidity. Lubricants. 2026; 14(5):184. https://doi.org/10.3390/lubricants14050184
Chicago/Turabian StyleMescola, Andrea, Federico Zanni, Alberto Rota, Cristina Bernini, Andrea Gerbi, Riccardo Carzino, Luca Repetto, Michał Bartkowski, Silvia Giordani, Renato Buzio, and et al. 2026. "Ultralow-Friction in Graphene–Nanodiamond Functionalized DLC Coatings: Transfer-Layer Evolution Under Variable Load and Humidity" Lubricants 14, no. 5: 184. https://doi.org/10.3390/lubricants14050184
APA StyleMescola, A., Zanni, F., Rota, A., Bernini, C., Gerbi, A., Carzino, R., Repetto, L., Bartkowski, M., Giordani, S., Buzio, R., & Paolicelli, G. (2026). Ultralow-Friction in Graphene–Nanodiamond Functionalized DLC Coatings: Transfer-Layer Evolution Under Variable Load and Humidity. Lubricants, 14(5), 184. https://doi.org/10.3390/lubricants14050184

