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February 19, 2026Materials0 citationsOpen Access

Plasma-Enhanced Graphene Coatings on Ti-6Al-4V: Insights from Non-Destructive Characterization

VSVictor J. SagreroFGFnu GorkyVSVashanti Storr

Key Points

  • The study aims to improve the surface properties of Ti-6Al-4V alloy using graphene coatings.
  • Deposited graphene coatings using plasma enhanced chemical vapor deposition (PECVD) technique.
  • Characterized materials using non-destructive techniques like Raman spectroscopy and thermoelectric potential.
  • Conducted surface roughness measurements on both coated and uncoated samples.
  • Performed eddy current analyses at varying frequencies.
  • Raman spectra confirmed uniform micrometric graphene on Ti substrates.
  • Graphene-coated samples exhibited metallic-like behavior indicated by Seebeck coefficient values.
  • High sensitivity in eddy current analysis was observed at low frequencies.
  • Surface roughness increased slightly post-deposition but remained compatible for biomedical use.
  • Enhanced thermoelectric sensitivity was noted with specific probe configurations.

Abstract

In this work, the deposition of graphene coatings on substrates of an ELI grade Ti-6Al-4V alloy was carried out using the Plasma Enhanced Chemical Vapor Deposition (PECVD) technique. The purpose of this study was to improve the surface properties of the material. The characterization of the material was carried out by non-destructive techniques, such as Raman Spectroscopy and Thermoelectric Potential. A preliminary characterization of Ti substrates was carried out by Raman spectroscopy. Conversely, thermoelectric potential tests were conducted using three distinct tip systems and four different temperature gradients. Lastly, some surface roughness measurements were conducted on all samples, both coated and uncoated. Graphene micro-structured coatings were obtained using a plasma-activated mixture of hydrogen and methane gases with an equimolar feed ratio (1:1 H2:CH4) at a temperature of 850 °C and a plasma exposure of 150 Watts and duration of 15 min. Raman spectra verified the presence of uniform micrometric graphene on the surface of Ti substrates. Graphene-coated Ti-6Al-4V ELI substrates exhibited Seebeck coefficient values indicating metallic-like behavior and suitability for thermoelectric sensing. In the eddy current analyses, it was found that low frequencies provided the highest sensitivity for differentiating between samples. An inverse relationship was identified between substrate thickness and phase angle, and a direct relationship with calculated electrical conductivity was also identified. This direct relation is attributed to penetration depth and interactions due to the chemical nature of the substrate and coating. Despite a slight increase in surface roughness after graphene deposition, values remained comparable to the base alloy, preserving compatibility for biomedical integration. Thermoelectric potential measurements revealed enhanced sensitivity to surface morphology and interfacial effects when high-sensitivity probe configurations were employed. These results support potential applications in implantable or wearable temperature sensors, energy harvesting devices, and smart biomedical interfaces. The thickness of the graphene coating was also characterized by SEM, which showed that the films deposited by PECVD are about 1 micron thick.

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Cite This Study

Sagrero et al. (2026) studied this question.

synapsesocial.com/papers/6996a7b5ecb39a600b3edac4https://doi.org/10.3390/ma19040774
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