DOI QR코드

DOI QR Code

Surface Characterization According to the Bias Voltage of the TiAgN Coating Film Layer Formed by the AIP Process

AIP법으로 형성된 TiAgN 코팅필름의 바이어스전압에 따른 표면 특성 분석

  • 백민숙 (순천대학교 미래전략신소재공학과) ;
  • 윤동주 (차세대 전략산업용 희유자원 실용화센터) ;
  • 강병모 ((주)오티앤티) ;
  • 정운조 ((주)오티앤티) ;
  • 김병일 (순천대학교 미래전략신소재공학과)
  • Received : 2015.03.23
  • Accepted : 2015.05.11
  • Published : 2015.05.27

Abstract

The implanting of metal products is performed with numerous surface treatments because of toxicity and adhesion. Recently, the surface modification of metal products has been actively studied by coating the surface of the TiC or TiN film. We prepared a Ti(10%)Ag Target which may be used in dental oral material by, using the AIP(arc ion plating) system TiAgN coating layer that was deposited on Ti g.23. The purpose of this study was to establish the optimal bias voltage conditions of the coated TiAgN layer formed by the AIP process. The TiAgN coatings were prepared with different bias voltage parameters (0V to -500V) to investigate the effect of bias voltage on their mechanical and chemical properties. The SEM(scanning electron microscope), EDS(energy dispersive X-ray spectrometer), XRD(X-ray diffraction), micro-hardness, and potentiodynamic polarization were measured and the surface characteristics of the TiAgN coating layers were evaluated. The TiAgN coating layer had different mechanical characteristics based on the bias voltage, which also showed differences in thickness and composition.

Keywords

References

  1. Kenneth L. Anusavice, Phillips' Sci. Dent. Materials., 11th ed., p.4-9, Saunders Charmyun, Korea (2006).
  2. K. S. Park et al., Biomater. Tissue Eng. Currnt Trends in Medical Science, 27, 13 (2000).
  3. Y. T. Lee, Nonferrous Metal V Titanium, p.406-408, Korea Metal Journal, Korea (2009).
  4. C. Leyens and M. Peters, Titanium and Titanium Alloys, p.423-465, WILEY-VCH Gmbh& Co. KGaA, Germany (2003).
  5. C. Y. Hyun, J. K. Huh and W. H. Lee, Korean J. Mater. Res., 16(3), 173 (2005). https://doi.org/10.3740/MRSK.2006.16.3.173
  6. Lampe T., Eisenberg S. and Laudien G., Surf. Coating Tech., 9(1), 69 (1993).
  7. J. Y. Lee, D. J. Oh, H. J. Kim and C. H. Chung, J. Korean Academy Prosthodontics, 45(7), 675 (2007).
  8. G. S. Lee, S. H. Bae and Y. Z. Lee, Korean Soc. Tribology Lubric. Eng., 26(1), 68 (2010).
  9. S. Carvalho, F. Vaz, L. Rebouta, D. Schneider, A. Cavaleiro and E. Alves, Surf. Coating Tech., 142, 110 (2001).
  10. M. Sakaki and T. Sakakibara, IEEE Trans. Plasma Sci., 22(6), 1049 (1994). https://doi.org/10.1109/27.370251
  11. K. T. Oh, H. M. Shim, C. J. Hwang and K. N. Kim, J. Korean Soc. Dent. Mater., 29(3), 221 (2002).
  12. J. J. Park, S. K. Mun and K. N. Kim, J. Korean Soc. Dent. Mater., 37(3), 227 (2010).
  13. J. H. Lee, Y. W. Choi, S. K. Jang and S. J. Kim, J. Korean Soc. Mar. Eng., 38(7), 890 (2014). https://doi.org/10.5916/jkosme.2014.38.7.890
  14. S. Y. Baik and E. Y. Na, J. Korean Soc. Mar. Eng., 27(3), 447 (2003).
  15. S. S. Kwon, C. H. Shin and G. Y. Shin, Oral. Biol. Res., 33(1), 36 (2009).
  16. B. Y. Shew, J. L. Huang and D. F. Lii, Int. J. Thin Solid Films, 293, 212 (1997). https://doi.org/10.1016/S0040-6090(96)09038-4
  17. A. N. Kal, K. Ravindranath, D. C. Kothari and P. M. Raole, Int. J. Surf. Coatings Tech., 145, 60 (2001). https://doi.org/10.1016/S0257-8972(01)01296-8
  18. K. H. Lee, S. K. Lee, B. H. Song, B. J. Jung, C. N. Park, K. M. Moon and M. H. Lee, J. Korean Int. Surf. Eng., 33(5), 319 (2000).
  19. E. J. Ri and T. S. Hoang, J. Korean Int. Surf. Eng., 32(3), 257 (1999).
  20. S. Y. Kwon, M. H. Kim, H. S. Lee, C. H. Son and K. H. Kim, J. Int. Ind. Tech., 25(1), 161 (1997).
  21. K. T. Oh, H. M. Sim, C. J. Hwang and K. N. Kim, J. Korean Soc. Dent. Mater., 29(3), 221 (2002).
  22. J. H. Han, K. H. Lee and M. C. Shin, Analytical Sci. Technol., 9(2), 192 (1996).