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Effect of Si Content on the Phase Formation Behavior and Surface Properties of the Cr-Si-Al-N Coatings

Cr-Si-Al-N 코팅의 상형성 및 표면 물성에 미치는 Si 함량의 영향

  • Choi, Seon-A (Engineering Ceramic Center, Korea Institute of Ceramic Engineering and Technology) ;
  • Kim, Hyung-Sun (Department of Materials Science and Engineering, Inha University) ;
  • Kim, Seong-Won (Engineering Ceramic Center, Korea Institute of Ceramic Engineering and Technology) ;
  • Lee, Sungmin (Engineering Ceramic Center, Korea Institute of Ceramic Engineering and Technology) ;
  • Kim, Hyung-Tae (Engineering Ceramic Center, Korea Institute of Ceramic Engineering and Technology) ;
  • Oh, Yoon-Suk (Engineering Ceramic Center, Korea Institute of Ceramic Engineering and Technology)
  • 최선아 (한국세라믹기술원 엔지니어링 세라믹 센터) ;
  • 김형순 (인하대학교 신소재공학과) ;
  • 김성원 (한국세라믹기술원 엔지니어링 세라믹 센터) ;
  • ;
  • 김형태 (한국세라믹기술원 엔지니어링 세라믹 센터) ;
  • 오윤석 (한국세라믹기술원 엔지니어링 세라믹 센터)
  • Received : 2016.12.02
  • Accepted : 2016.12.27
  • Published : 2016.12.31

Abstract

Cr-Si-Al-N coating with different Si content were deposited by hybrid physical vapor deposition (PVD) method consisting of unbalanced magnetron (UBM) sputtering and arc ion plating (AIP). The deposition temperature was $300^{\circ}C$, and the gas ratio of $Ar/N_2$ were 9:1. The CrSi alloy and aluminum targets used for arc ion plating and sputtering process, respectively. Si content of the CrSi alloy targets were varied with 1 at%, 5 at%, and 10 at%. The phase analysis, composition and microstructural analysis performed using x-ray diffraction (XRD) and field emission scanning electron microscopy (FESEM) including energy dispersive spectroscopy (EDS), respectively. All of the coatings grown with textured CrN phase (200) plane. The thickness of the Cr-Si-Al-N films were measured about $2{\mu}m$. The friction coefficient and removal rate of films were measured by a ball-on-disk test under 20N load. The friction coefficient of all samples were 0.6 ~ 0.8. Among all of the samples, the removal rate of CrSiAlN (10 at% Si) film shows the lowest values, $4.827{\times}10^{-12}mm^3/Nm$. As increasing of Si contents of the CrSiAlN coatings, the hardness and elastic modulus of CrSiAlN coatings were increased. The morphology and composition of wear track of the films was examined by scanning electron microscopy (SEM) and energy dispersive spectroscopy, respectively. The surface energy of the films were obtained by measuring of contact angle of water drop. Among all of the samples, the CrSiAlN (10 at% Si) films shows the highest value of the surface energy, 41 N/m.

Keywords

References

  1. H. C. Barshilia, A. Jain, and K. Rajam, Structure, hardness and thermal stability of nanolayered TiN/CrN multilayer coatings, Vacuum. 72 (2003) 241-248. https://doi.org/10.1016/j.vacuum.2003.08.003
  2. P. Mayrhofer, G. Tischler, and C. Mitterer. Microstructure and mechanical/thermal properties of Cr-N coatings deposited by reactive unbalanced magnetron sputtering. Surf. coat. Technol. 142 (2001) 78-84.
  3. J. Caicedo, C. Amaya, L. Yate, O. Nos, M. Gomez, and P. Prieto. Hard coating performance enhancement by using [Ti/TiN] n,[Zr/ZrN] n and [TiN/ZrN] n multilayer system. J. Mater. Sci. Emg. B. 171 (2010) 56-61. https://doi.org/10.1016/j.mseb.2010.03.069
  4. J. B. Choi, K. Cho, M. Lee, K. H. Kim. Effects of Si content and free Si on oxidation behavior of Ti-Si-N coating layers Thin Solid Films. 447 (2004) 365-370.
  5. Y. Chim, X. Ding, X. Zeng, and S. Zhang. Oxidation resistance of TiN, CrN, TiAlN and CrAlN coatings deposited by lateral rotating cathode arc. Thin Solid Films. 517 (2009) 4845-4849. https://doi.org/10.1016/j.tsf.2009.03.038
  6. G Abadias, L Koutsokeras, A Siozios, P Patsalas. Stress, phase stability and oxidation resistance of ternary Ti-Me-N (Me= Zr, Ta) hard coatings. Thin Solid Films. 538 (2013) 56-70. https://doi.org/10.1016/j.tsf.2012.10.119
  7. I.-W. Park, D. S. Kang, J. J. Moore, S. C. Kwon, J. J. Rha, and K. H. Kim. Microstructures, mechanical properties, and tribological behaviors of Cr-Al-N, Cr-Si-N, and Cr-Al-Si-N coatings by a hybrid coating system. Surf. coat. Technol. 201(2007) 5223-5227. https://doi.org/10.1016/j.surfcoat.2006.07.118
  8. D. Mercs, N. Bonasso, S. Naamane, J.-M. Bordes, and C. Coddet. Mechanical and tribological properties of Cr-N and Cr-SI-N coatings reactively sputter deposited Surf. coat. Technol. 200 (2005) 403-407. https://doi.org/10.1016/j.surfcoat.2005.02.214
  9. M. Brizuela, A. Garcia-Luis, I. Braceras, J. Onate, J. Sanchez-Lopez, D. Martinez-Martinez, C. Lopez-Cartes, and A. Fernandez. Magnetron sputtering of Cr (Al) N coatings: mechanical and tribological study. Surf. coat. Technol. 200 (2005) 192-197. https://doi.org/10.1016/j.surfcoat.2005.02.105
  10. H. C. Barshilia, N. Selvakumar, B. Deepthi, and K. Rajam. A comparative study of reactive direct current magnetron sputtered CrAlN and CrN coatings. Surf. coat. Technol. 201 (2006) 2193-2201. https://doi.org/10.1016/j.surfcoat.2006.03.037
  11. E. Fornies, R. E. Galindo, O. Sanchez, and J. Albella. Growth of CrN x films by DC reactive magnetron sputtering at constant N 2/Ar gas flow. Surf. coat. Technol. 200 (2006) 6047-6053. https://doi.org/10.1016/j.surfcoat.2005.09.020
  12. D. Depla, J. Haemers, and R. De Gryse. Target surface condition during reactive glow discharge sputtering of copper Plasma Sources. Sci. Technol. 11 (2002) 91.
  13. S. Berg and T. Nyberg. Fundamental understanding and modeling of reactive sputtering processes. Thin solid films. 476 (2005) 215-230. https://doi.org/10.1016/j.tsf.2004.10.051
  14. Y. H. Yang, I. W. Lyo, S. J. Park, D. S. Lim and Y. S. Oh. Tribology and Phase Evolution of Cr-Mo-N coatings with different lnterlayer condition. J. Kor. Surf. Eng. 44 (2011) 269-276. https://doi.org/10.5695/JKISE.2011.44.6.269
  15. Y. S. Hong, S. H. Kwon, W. Tiegang, K. Doo-In, C. Jihwan, and K. H. Kim. Effects of Cr interlayer on mechanical and tribological properties of Cr-Al-Si-N nanocomposite coating. Trans. Nonferrous Met. Soc. China. 21 (2011) s62-67. https://doi.org/10.1016/S1003-6326(11)61062-5
  16. J.-W. Lee and Y.-C. Chang. A study on the microstructures and mechanical properties of pulsed DC reactive magnetron sputtered Cr-Si-N nanocomposite coatings. Surf. coat. Technol. 202 (2007) 831-836. https://doi.org/10.1016/j.surfcoat.2007.05.066
  17. P. M. Martin. Handbook of deposition technologies for films and coatings: science, applications and technology. William Andrew. (2009) 257.
  18. H.-W. Chen, Y.-C. Chan, J.-W. Lee and J,-G. Duh. Oxidation behavior of Si-doped nanocomposite CrAlSiN coatings. Surface and Coatings Technology. 205 (2010) 1189-1194. https://doi.org/10.1016/j.surfcoat.2010.08.156
  19. K. Yamamoto, T. Sato and M. Takeda. Structural analysis of (Cr1-xSix)N coatings and tribological property in water environment Surf. Coat. Technol. 193 (2003) 167-172
  20. A. ozturk, K. V. Ezirmik, K. Kazmanli, M. Urgen, O. L. Eryilmaz, A. Erdemir. Comparative tribological behaviors of TiN-, CrN- and MoN-Cu nanocomposite coatings. Tribology International. 41 (2008) 49-59. https://doi.org/10.1016/j.triboint.2007.04.008