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Microstructure, fractal geometry and corrosion properties of CrN thin films : The effect of shot number and angular position

Habibi, M. (författare)
Plasma Physics Research Center, Science and Research Branch, Islamic Azad University, Tehran, Iran
Mirzaei, S. (författare)
CEITEC BUT, Brno University of Technology, Brno, Czech Republic
Arman, A. (författare)
ACECR, Vacuum Technology Research Group, Sharif University Branch, Tehran, Iran
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Jurečka, S. (författare)
Institute of Aurel Stodola, Faculty of Electrical Engineering, University of Žilina, Liptovský Mikuláš, Slovakia
Sadeghi, Mohammad, 1962- (författare)
Mälardalens universitet,Framtidens energi
Zelati, A. (författare)
Department of Basic Sciences, Birjand University of Technology, Birjand, Iran
Shakoury, R. (författare)
Department of Physics, Faculty of Science, Imam Khomeini International University, Qazvin, Iran
Tanhaee, E. (författare)
Department of Nanophysics, Tehran University & Iranian National Center for Laser Science and Technology, Tehran, Iran
Ghobadi, N. (författare)
Department of Physics, Faculty of Science, Malayer University, Malayer, Iran
Ehteram, H. (författare)
ACECR, Vacuum Technology Research Group, Sharif University Branch, Tehran, Iran
Ţălu, S. (författare)
The Directorate of Research, Development and Innovation Management (DMCDI), Technical University of Cluj-Napoca, Cluj-Napoca, Romania
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 (creator_code:org_t)
Elsevier Ltd, 2022
2022
Engelska.
Ingår i: Materials Today Communications. - : Elsevier Ltd. - 2352-4928. ; 32
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
Stäng  
  • The effect of different plasma focus shots and angular positions (0° and 30°) on the properties of chromium nitride (CrN) coatings, deposited by a plasma focus (PF) device on stainless steel substrates, have been systematically investigated in this paper. The structural and morphological properties of CrN thin films were characterized by X-ray diffraction (XRD) and atomic force microscopy (AFM). Moreover, the corrosion behavior of the CrN thin films was investigated using the ‘c’ method. The XRD patterns demonstrated the growth of the polycrystalline structure composed of CrN/Cr2N nanograins and the enhanced crystallinity of the CrN coatings upon increasing the shot numbers. In addition, AFM results showed enhanced multifractal properties of the sample prepared at 0° angular position and a reducing trend in these properties for the layers prepared at 30° angular position. Moreover, they exhibited sharp hillock-like features on the surface, corresponding to the columnar growth of the CrN coatings, which further protruded as the number of shots increased. The results of the corrosion test showed that the resistance of stainless-steel substrate was improved by depositing the CrN coatings due to the formation of a passive and protective layer on its surface. Notably, ceramic CrN film, prepared through 10 shots at 30° angular position, showed the best corrosion resistance. Our strategy is advantageous for designing and manufacturing novel devices and instruments based on CrN corrosion resistant coating.

Ämnesord

TEKNIK OCH TEKNOLOGIER  -- Maskinteknik (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Mechanical Engineering (hsv//eng)

Nyckelord

AFM
Corrosion properties
CrN coating
Plasma focus
XRD
Chromium alloys
Chromium compounds
Corrosion resistance
Corrosion resistant coatings
Corrosive effects
Crystallinity
Film preparation
Fractals
Stainless steel
Steel corrosion
Substrates
Thin films
Angular positions
Atomic-force-microscopy
Chromium nitride
Chromium nitride coatings
Corrosion property
Nitride thin films
Stainless steel substrates
X- ray diffractions
X ray diffraction

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