4.7 Article

An investigation on ZrO2 nano-particle incorporation, surface properties and electrochemical corrosion behaviour of PEO coating formed on Cp-Ti

Journal

SURFACE & COATINGS TECHNOLOGY
Volume 313, Issue -, Pages 263-273

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.surfcoat.2017.01.105

Keywords

Plasma electrolytic oxidation; Cp-Ti; Zirconia nano-particles; Conductivity; Corrosion properties; Scratch resistance

Funding

  1. Department of Science and Technology, New Delhi [SR/S3/ME/0024/2011]
  2. Department of Biotechnology, New Delhi [BT/PR-1731/MED/32/99/2008]

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Plasma Electrolytic Oxidation technique was used to produce nano-sized zirconia incorporated ceramic coating over commercially pure titanium using electrolytes with varying conductivities. Electrolytes with 5 g/l trisodium orthophosphate, 4 g/l monoclinic zirconia nano-particle and varying amount of potassium hydroxide were used. The interrelationship between electrolyte conductivity, particle incorporation, surface features, corrosion behaviour and scratch resistance of the coatings were studied. The phase composition, surface morphology and surface roughness were investigated using X-ray diffraction (XRD), scanning electron microscopy (SEM) and optical profflometer. The electrochemical corrosion behaviour of the samples was analysed from potentiodynamic polarization behaviour, electrochemical impedance spectroscopy and equivalent circuit modelling in a Kokubo 7.4 pH simulated body fluid. The scratch resistance of the coatings was analysed by performing a scratch test using a Rockwell C diamond indenter with progressive loading upto 50 N. The coatings exhibited both inert and reactive incorporation of zirconia nano-particles. The coating prepared with 6 g/l KOH had lower inert incorporation zirconia, higher porosity, higher corrosion current (I (i(corr) = 1.43 x 10(-4) mA/cm(2)), and exhibited gross spallation and poor scratch resistance. The coating prepared with 4 g/l of KOH had the least corrosion current (i(corr), = 5.18 x 10(-8) mA/cm(2)). 2017 Elsevier B.V. All rights reserved.

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