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Plasma Electrolytic Oxidation in Surface Modification of Metals for Electronics

  • Received : 2014.05.29
  • Accepted : 2014.06.09
  • Published : 2014.06.30

Abstract

This paper presents a brief summary on a relatively new plasma aided electrolytic surface treatment process for light metals. A brief discussion regarding the advantages, principle, process parameters and applications of this process is discussed. The process owes its origin to Sluginov who discovered an arc discharge phenomenon in electrolysis in 1880. A similar process was studied and developed by Markov and coworkers in 1970s who successfully deposited an oxide film on aluminium. Several investigation thereafter lead to the establishment of suitable process parameters for deposition of a crystalline oxide film of more than $100{\mu}m$ thickness on the surface of light metals such as aluminium, titanium and magnesium. This process nowadays goes by several names such as plasma electrolytic oxidation (PEO), micro-arc oxidation (MOA), anodic spark deposition (ASD) etc. Several startups and surface treatment companies have taken up the process and deployed it successfully in a range of products, from military grade rifles to common off road sprockets. However, there are certain limitations to this technology such as the formation of an outer porous oxide layer, especially in case of magnesium which displays a Piling Bedworth ratio of less than one and thus an inherent non protective oxide. This can be treated further but adds to the cost of the process. Overall, it can be said the PEO process offers a better solution than the conventional coating processes. It offers advantages considering the fact that he electrolyte used in PEO process is environmental friendly and the temperature control is not as strict as in case of other surface treatment processes.

Keywords

References

  1. D. A. Becerik, A. Ayday, L. C. K. lu, S. C. Kurnaz, and A. Ozel: The Effects of $Na_{2}SiO_{3}$ Concentration on the Properties of Plasma Electrolytic Oxidation Coatings on 6060 Aluminum Alloy, Journal of Materials Engineering and Performance, 21-7 (2012), 1426-1430 https://doi.org/10.1007/s11665-011-0022-1
  2. Y. M. Kim, D. Y. Hwang, W. C. Lee, B. Y. Yoo, D. H. Shin: Surface Modification of High Si Content Al Alloy by Plasma Electrolytic Oxidation, Korean Journal of Metals and Materials, 48-1 (2010), 49-56 https://doi.org/10.3365/KJMM.2010.48.01.049
  3. J.A. Curran, T.W. Clyne: Porosity in plasma electrolytic oxide coatings, Acta Materialia; 54-7 (2006), 1985- 1993 https://doi.org/10.1016/j.actamat.2005.12.029
  4. http://www.techplate.com.tw/, 05/2014
  5. B.Y. Kim, J. G. Kim, D. Y. Lee, M. Jeon, Y. N. Kim, S. Y. Kim, and K. Y. Kim: Effect of $Na_{2}P_{2}O_{7}$ Electrolyte and Al Alloy Composition on Physical and Crystallographical properties of PEO Coating Layer : I. Physical Properties of PEO Layer, Journal of the Korean Ceramic Society, 49-3 (2012), 241-246 https://doi.org/10.4191/kcers.2012.49.3.241
  6. H. Duan, C. Yan, and Fuhui Wang: Effect of electrolyte additives on performance of plasma electrolytic oxidation films formed on magnesium alloy AZ91D, Electrochimica Acta, 52 (2007), 3785-3793 https://doi.org/10.1016/j.electacta.2006.10.066
  7. B.Y. Kim, D. Y. Lee, Y. N. Kim, M. S. Jeon, W. S.You, and K. Y. Kim: Analysis of Oxide Coatings Formed on Al 1050 Alloy by Plasma Electrolytic Oxidation, Journal of Korean Ceramic Society, 46-3, (2009), 295-300 https://doi.org/10.4191/KCERS.2009.46.3.295
  8. L. Pezzato, K. Brunelli, S. Gross, M. Magrini, and M. Dabala: Effect of process parameters of plasma electrolytic oxidation on microstructure and corrosion properties of magnesium alloys, Journal of Applied Electrochemistry, DOI 10.1007/s10800-014-0695-x,(2014)
  9. W. H. Hua, J. Z. Sun, L. B. Yu, Y. F. Rong, and L. X. Yi: Characterization of microarc oxidation proess on aluminium alloy, China Physics Letters, 20-10 (2003), 1815-1818 https://doi.org/10.1088/0256-307X/20/10/345
  10. http://naain.com/eng/applications.html, 05/2014
  11. I. Kume, N. Inoue, T. Toda, M. Furumiya, T. Takeuchi, F. Ito, T. Iwaki, S. Shida, and Y. Hayashi: Low- Temperature Plasma-Oxidation Process for Reliable Tantalum-Oxide (TaO) Decoupling Capacitors, IEEE, (2008), 225-227
  12. Soodong Park, Sanghoon Yoon, Kicheol Kang, Changhee Lee: Characterization of Ni/YSZ Anode Coating for Solid Oxide Fuel Cells by Atmospheric Plasma Spray Method, Journal of KWJS, 26-4 (2008), 50-54 https://doi.org/10.5781/KWJS.2008.26.4.050
  13. H. K. Lee, D. H. Kim, S. H. Hwang, B. K. Ahn, B. K. Kim, D. S. Suhr and M. K. Ahn: A Study on the elastic properties of coated layers and the changes of microstructure in plasma spray coating of $Al_{2}O_{3}-TiO_{2}$ ceramics, Journal of KWJS, 14-6 (1996), 109-118