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Full Length Articles

Influence of different sodium-based additives on corrosion resistance of PEO coatings on pure Ti

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Pages 247-255 | Received 19 Dec 2018, Accepted 24 Mar 2019, Published online: 22 Apr 2019

References

  • Babaei M, Dehghanian C, Vanaki M. Effect of additive on electrochemical corrosion properties of plasma electrolytic oxidation coatings formed on CP Ti under different processing frequency. Appl Surf Sci. 2015;357:712–720.
  • Di S, Guo Y, Lv H, et al. Microstructure and properties of rare earth CeO2-doped TiO2 nanostructured composite coatings through micro-arc oxidation. Ceram Int. 2015;41:6178–6186.
  • Fattah-Alhosseini A, Keshavarz MK, Molaei M. Plasma electrolytic oxidation (PEO) process on commercially pure Ti surface : effects of electrolyte on the microstructure and corrosion behavior of coatings. Metall Mater Trans A. 2018;49:4966–4979.
  • Babaei M, Dehghanian C, Babaei M. Electrochemical assessment of characteristics and corrosion behavior of Zr-containing coatings formed on titanium by plasma electrolytic oxidation. Surf Coat Technol. 2015;279:79–91.
  • Tao XJ, Li SJ, Zheng CY, et al. Synthesis of a porous oxide layer on a multifunctional biomedical titanium by micro-arc oxidation. Mater Sci Eng C. 2009;29:1923–1934.
  • R.S. Williamsona, Disegi J, Janorkar AV, et al. Effect of duty cycle on the crystallinity, pore size, surface roughness and corrosion resistance of the anodized surface on titanium. Surf Coat Technol. 2015;277:278–288.
  • Kaan S, Muhaffel F, Baydogan M. Effect of incorporating carbon nanotubes into electrolyte on surface morphology of micro arc oxidized Cp-Ti. Appl Surf Sci. 2014;318:10–14.
  • Cheng YL, Wu XQ, Xue ZG, et al. Microstructure, corrosion and wear performance of plasma electrolytic oxidation coatings formed on Ti-6Al-4V alloy in silicate-hexametaphosphate electrolyte. Surf Coatings Technol. 2013;217:129–139.
  • Hariprasad S, Ashfaq M, Arunnellaiappan T, et al. Role of electrolyte additives on in-vitro corrosion behavior of DC plasma electrolytic oxidization coatings formed on Cp-Ti. Surf Coat Technol. 2016;292:20–29.
  • Durdu S, Levent S, Korkmaz K. Characterization and mechanical properties of the duplex coatings produced on steel by electro-spark deposition and micro-arc oxidation. Surf. Coatings Technol. 2013;236:303–308.
  • Vakili-Azghandi M, Fattah-Alhosseini A, Keshavarz MK. Effects of Al2O3 nano-particles on corrosion performance of plasma electrolytic oxidation coatings formed on 6061 aluminum alloy. J Mater Eng Perform. 2016;25:5302–5313.
  • Venkateswarlu K, Rameshbabu N, Sreekanth D, et al. Role of electrolyte additives on in-vitro electrochemical behavior of micro arc oxidized titania films on Cp Ti. Appl Surf Sci. 2012;258:6853–6863.
  • Montazeri M, Dehghanian C, Shokouhfar M, et al. Investigation of the voltage and time effects on the formation of hydroxyapatite-containing titania prepared by plasma electrolytic oxidation on Ti – 6Al – 4V alloy and its corrosion behavior. Appl Surf Sci. 2011;257:7268–7275.
  • Yerokhin A, Parfenov EV, Matthews A. In situ impedance spectroscopy of the plasma electrolytic oxidation process for deposition of Ca- and P-containing coatings on Ti. Surf Coat Technol. 2016;301:54–62.
  • Wang H, Zhu R, Lu Y, et al. Effect of sandblasting intensity on microstructures and properties of pure titanium micro-arc oxidation coatings in an optimized composite technique. Appl Surf Sci. 2014;292:204–212.
  • Aliasghari S, Němcová A, Skeldon P, et al. Influence of coating morphology on adhesive bonding of titanium pre-treated by plasma electrolytic oxidation. Surf Coat Technol. 2016;289:101–109.
  • Liu X, Li G, Xia Y. Investigation of the discharge mechanism of plasma electrolytic oxidation using Ti tracer. Surf Coat Technol. 2012;206:4462–4465.
  • Stojadinovi S, Vasili R, Petkovi M, et al. Plasma electrolytic oxidation of titanium in heteropolytungstate acids. Surf Coat Technol. 2011;206:575–581.
  • Bayati MR, Golestani-Fard F, Moshfegh AZ, et al. In situ derivation of sulfur activated TiO2 nano porous layers through pulse-micro arc oxidation technology. Mater Res Bull. 2011;46:1642–1647.
  • Vakili-Azghandi M, Fattah-Alhosseini A, Keshavarz MK. Optimizing the electrolyte chemistry parameters of PEO coating on 6061 Al alloy by corrosion rate measurement: response surface methodology. Measurement. 2018;124:252–259.
  • Molaei M, Fattah-Alhosseini A, Gashti SO. Sodium aluminate concentration effects on microstructure and corrosion behavior of the plasma electrolytic oxidation coatings on pure titanium. Metall Mater Trans A. 2017;49:368–375.
  • Shokouhfar M, Dehghanian C, Baradaran A. Preparation of ceramic coating on Ti substrate by plasma electrolytic oxidation in different electrolytes and evaluation of its corrosion resistance. Appl Surf Sci. 2011;257:2617–2624.
  • Sundararajan G, Krishna LR. Mechanisms underlying the formation of thick alumina coatings through the MAO coating technology. Surf. Coat. Technol. 2003;167:269–277.
  • Quintero D, Galvis O, Calderón JA, et al. Effect of electrochemical parameters on the formation of anodic films on commercially pure titanium by plasma electrolytic oxidation. Surf Coat Technol. 2014;258:1223–1231.
  • Teng F, Tai I, Wang M, et al. The structures, electrochemical and cell performance of titania films formed on titanium by micro-arc oxidation. J Taiwan Inst Chem Eng. 2014;45:1331–1337.
  • Khan RHU, Yerokhin A, Li X, et al. Surface characterisation of DC plasma electrolytic oxidation treated 6082 aluminium alloy : effect of current density and electrolyte concentration. Surf. Coat. Technol. 2010;205:1679–1688.
  • Liang J, Srinivasan PB, Blawert C, et al. Electrochemical corrosion behaviour of plasma electrolytic oxidation coatings on AM50 magnesium alloy formed in silicate and phosphate based electrolytes. Electrochim Acta. 2009;54:3842–3850.
  • Durdu S, Deniz ÖF, Usta M. Characterization and formation of hydroxyapatite on Ti6Al4V coated by plasma electrolytic oxidation. J. Alloys Compd. 2013;551:422–429.
  • K. Venkateswarlu, Rameshbabu N, Sreekanth D, et al. Role of electrolyte chemistry on electronic and in vitro electrochemical properties of micro-arc oxidized titania films on Cp Ti. Electrochim Acta. 2013;105:468–480.
  • Wang Y, Liu Z, Ouyang J, et al. In fluence of electrolyte compositions on structure and high- temperature oxidation resistance of microarc oxidation coatings formed on Ti 2 AlNb alloy. J Alloys Compd. 2015;647:431–437.
  • Vangolu Y, Arslan E, Totik Y, et al. Optimization of the coating parameters for micro-arc oxidation of Cp-Ti. Surf Coat Technol. 2010;205:1764–1773.
  • Wang H, Zhu R, Lu Y, et al. Preparation and properties of plasma electrolytic oxidation coating on sandblasted pure titanium by a combination treatment. Mater Sci Eng C. 2014;42:657–664.
  • Durdu S, Usta M. The tribological properties of bioceramic coatings produced on Ti6Al4V alloy by plasma electrolytic oxidation. Ceram Int. 2014;40:3627–3635.
  • De Viteri VS, Bayón R, Igartua A, et al. Structure, tribocorrosion and biocide characterization of Ca, P and I containing TiO2 coatings developed by plasma electrolytic oxidation. Appl Surf Sci. 2016;367:1–10.
  • Roknian M, Fattah-Alhosseini A, Omid S. Study of the effect of ZnO nanoparticles addition to PEO coatings on pure titanium substrate : microstructural analysis, antibacterial effect and corrosion behavior of coatings in Ringer ’ s physiological solution. J Alloys Compd. 2018;740:330–345.
  • Roknian M, Fattah-Alhosseini A, Gashti SO. Plasma electrolytic oxidation coatings on pure Ti substrate : effects of Na3PO4 concentration on morphology and corrosion behavior of coatings in Ringer,s physiological solution. J Mater Eng Perform. 2017;27:1343–1351.
  • Yerokhin AL, Nie X, Leyland A, et al. Characterisation of oxide films produced by plasma electrolytic oxidation of a Ti ᎐ 6Al ᎐ 4V alloy. Surf. Coat. Technol. 2000;130:195–206.
  • Aliofkhazraei M, Gharabagh RS, Teimouri M, et al. Ceria embedded nanocomposite coating fabricated by plasma electrolytic oxidation on titanium. J Alloys Compd. 2016;685:376–383.
  • Fattah-Alhosseini A, Gashti SO, Molaie M. Effects of disodium phosphate concentration (Na2HPO4.2H2O) on microstructure and corrosion resistance of plasma electrolytic oxidation (PEO) coatings on 2024 Al alloy. J Mater Eng Perform. 2018;27:825–834.
  • Dzhurinskiy D, Gao Y, Yeung W-K, et al. Characterization and corrosion evaluation of TiO2 : n-HA coatings on titanium alloy formed by plasma electrolytic oxidation. Surf Coat Technol. 2015;269:258–265.