Voltage-Dependent Evolution of Microstructure and Tribo-Mechanical Behaviour of Coatings Formed on CP-Ti from a Wollastonite–Hydroxyapatite Electrolyte by Micro-Arc Oxidation

Commercially pure titanium is widely used for load-bearing implants but its low surface hardness and high friction coefficient limit durability. In this work, calcium- and silicon-bearing coatings were deposited on CP-Ti (VT1-0/ASTM Grade 2) by micro-arc oxidation (MAO) in an aqueous electrolyte of 30 wt.% H3PO4, 60 g/L hydroxyapatite and 75 g/L wollastonite, at a fixed filling-parameter setting of 8% and two voltages, 200 and 300 V. The coatings were characterised by SEM, EDS, FIB cross-sectioning, progressive-load scratch testing, instrumented indentation (ISO 14577-1) and single-pass ball-on-flat sliding with 3D profilometry. Raising the voltage from 200 to 300 V thickened the layer from about 28 to 37 µm but rendered the cross-section coarsely porous and the coating–substrate interface markedly rougher. The first cohesive critical load fell from 6.15 N at 200 V to 3.73 N at 300 V, and the kinetic friction coefficient rose from 0.41 to 0.75. Instrumented indentation gave comparable properties for both coatings (Martens hardness 2254 versus 2169 N/mm2; modulus 103 versus 102 GPa), indicating that the higher-voltage penalty lies in coating architecture and interface quality rather than in intrinsic hardness. The lower voltage is therefore preferable for tribologically loaded coatings of this type.

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Journal
Coatings
Published
2026-10-09
DOI
https://doi.org/10.3390/coatings16101192
Primary Topic
Surface Treatment and Coatings
Type
article
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article

Voltage-Dependent Evolution of Microstructure and Tribo-Mechanical Behaviour of Coatings Formed on CP-Ti from a Wollastonite–Hydroxyapatite Electrolyte by Micro-Arc Oxidation

Balzhan Kshibekova, Aidar Karaulovich Kenzhegulov, Nauryzbek Bakhytuly, Axaule Mamaeva et al.
Coatings
Surface Treatment and Coatings
article

Voltage-Dependent Evolution of Microstructure and Tribo-Mechanical Behaviour of Coatings Formed on CP-Ti from a Wollastonite–Hydroxyapatite Electrolyte by Micro-Arc Oxidation

Balzhan Kshibekova, Aidar Karaulovich Kenzhegulov, Nauryzbek Bakhytuly, Axaule Mamaeva, Małgorzata Rutkowska-Gorczyca, P. Kowalewski, Talshyn Yetish, Nazgul Toiynbaeva
article en

Abstract

Commercially pure titanium is widely used for load-bearing implants but its low surface hardness and high friction coefficient limit durability. In this work, calcium- and silicon-bearing coatings were deposited on CP-Ti (VT1-0/ASTM Grade 2) by micro-arc oxidation (MAO) in an aqueous electrolyte of 30 wt.% H3PO4, 60 g/L hydroxyapatite and 75 g/L wollastonite, at a fixed filling-parameter setting of 8% and two voltages, 200 and 300 V. The coatings were characterised by SEM, EDS, FIB cross-sectioning, progressive-load scratch testing, instrumented indentation (ISO 14577-1) and single-pass ball-on-flat sliding with 3D profilometry. Raising the voltage from 200 to 300 V thickened the layer from about 28 to 37 µm but rendered the cross-section coarsely porous and the coating–substrate interface markedly rougher. The first cohesive critical load fell from 6.15 N at 200 V to 3.73 N at 300 V, and the kinetic friction coefficient rose from 0.41 to 0.75. Instrumented indentation gave comparable properties for both coatings (Martens hardness 2254 versus 2169 N/mm2; modulus 103 versus 102 GPa), indicating that the higher-voltage penalty lies in coating architecture and interface quality rather than in intrinsic hardness. The lower voltage is therefore preferable for tribologically loaded coatings of this type.

CoatingsVol. 16(10)
Wrocław University of Science and Technology (PL), Satbayev University (KZ), Academy of Civil Aviation (KZ), "Institute of Metallurgy and Ore Beneficiation" JSC (KZ)
Openalex Percentile: Top 22%
Surface Treatment and Coatings
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