Materials Map

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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Publications (1/1 displayed)

  • 2023The Characteristics of Light (TiCrAl0.5NbCu)CxNy High-Entropy Coatings Deposited Using a HiPIMS/DCMS Technique4citations

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Zoita, Nicolae Catalin
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López-Ortega, Ainara
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2023

Co-Authors (by relevance)

  • Zoita, Nicolae Catalin
  • López-Ortega, Ainara
  • Parau, Anca C.
  • Kiss, Adrian
  • Almandoz, Xanti
  • Rodriguez, Juan Carlos
  • Dinu, Mihaela
  • Grigorescu, Cristiana Eugenia Ana
  • Sobetkii, Arcadie
  • Mondragon, Mikel
  • Pana, Iulian
  • Harb, Alaa Abou
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article

The Characteristics of Light (TiCrAl0.5NbCu)CxNy High-Entropy Coatings Deposited Using a HiPIMS/DCMS Technique

  • Zoita, Nicolae Catalin
  • López-Ortega, Ainara
  • Parau, Anca C.
  • Kiss, Adrian
  • Almandoz, Xanti
  • Rodriguez, Juan Carlos
  • Dinu, Mihaela
  • Grigorescu, Cristiana Eugenia Ana
  • Sobetkii, Arcadie
  • Mondragon, Mikel
  • Pana, Iulian
  • Harb, Alaa Abou
  • Izurrategi, Jose Manuel
Abstract

<jats:p>Multi-component high-entropy (TiCrAl0.5NbCu)CxNy coatings targeting applications requiring medium-to-high friction and wear-resistant surfaces were fabricated through the co-sputtering of elemental targets in an Ar + CH4 + N2 reactive atmosphere using a hybrid HiPIMS/DCMS technique. Two sets of samples were fabricated: (a) (TiCrAl0.5NbCu)Cx high-entropy carbides (HEC) and (b) (TiCrAl0.5NbCu)CxN0.13 high-entropy carbonitrides (HECN), 0 ≤ x ≤ 0.48. The structural, mechanical, tribological, and corrosion resistance properties were thoroughly investigated. The metallic sample exhibits a single BCC structure that changes to FCC via an intermediary amorphous phase through the addition of C or N to the content of the films. The crystallinity of the FCC phases is enhanced and the density of the films decreases down to 5.5 g/cm3 through increasing the carbon fraction up to 48%. The highest hardness of about 16.9 GPa and the lowest wear rate of about 5.5 × 10−6 mm3/Nm are presented by the samples with the largest carbon content, x = 0.48. We found a very good agreement between the evolution of H/E and H3/E2 parameters with carbon content and the tribological behavior of the coatings. The best corrosion resistance was presented by the low-carbon carbonitride samples, showing a charge transfer resistivity of about 3 × 108 Ω∙cm, which is more than three times larger than that of the metallic HEA. The best tribological characteristics for envisioned application were presented by (TiCrAl0.5NbCu)C0.3N0.13, showing a coefficient of friction of 0.43 and a wear rate of about 7.7 × 10−6 mm3/Nm.</jats:p>

Topics
  • density
  • impedance spectroscopy
  • surface
  • amorphous
  • Carbon
  • corrosion
  • resistivity
  • phase
  • reactive
  • carbide
  • hardness
  • crystallinity
  • coefficient of friction
  • carbon content