TY - JOUR
T1 - Synthesis and properties of polyfunctional coatings on aluminum and titanium alloys
AU - Yar-Mukhamedova, G. Sh
AU - Sakhnenko, N.
AU - Korogodskaya, A.
AU - Stepanova, I.
AU - Karakurkchi, A.
AU - Wang, W. Y.
AU - Zellele, D.
AU - Imanbayeva, A.
N1 - Publisher Copyright:
© (2026), (al-Farabi Kazakh State National University). All rights reserved.
PY - 2026/3/20
Y1 - 2026/3/20
N2 - This work presents the synthesis of highly active electrode materials for the electrolytic production of hydrogen from aqueous solutions, which can also serve as photocatalysts. Composite coatings produced by plasma–electrolytic oxidation on aluminum and titanium alloy substrates, doped with vanadium and tungsten compounds, were investigated. The electrolysis processes of aqueous solutions using these composites as electrode materials were analyzed. Linear voltammetry was applied to determine the Tafel equation constants for the systems WO3 – V2O5 – Al2O3/Al and WO3 – V2O5 – TiO2/Ti, which are proposed as electrode materials for hydrogen evolution reactions. The study found that the dopant content, the metallic substrate characteristics, and surface morphology strongly influence the coatings’ functional properties. The Tafel coefficients a and b indicate a high level of electrocatalytic activity for the synthesized coatings, confirming their suitability as electrode materials for electrolytic hydrogen production. A comparison of photocatalytic activity in the methyl orange degradation reaction revealed higher activity of the aluminum-based coating than the titanium-based coating, highlighting the relevance of these materials for ecological technologies. The presence of nonstoichiometric oxides, compositional variability, morphological differences, and the developed surface area accounts for their exceptionally high electrocatalytic activity and, therefore, their strong potential for functional applications.
AB - This work presents the synthesis of highly active electrode materials for the electrolytic production of hydrogen from aqueous solutions, which can also serve as photocatalysts. Composite coatings produced by plasma–electrolytic oxidation on aluminum and titanium alloy substrates, doped with vanadium and tungsten compounds, were investigated. The electrolysis processes of aqueous solutions using these composites as electrode materials were analyzed. Linear voltammetry was applied to determine the Tafel equation constants for the systems WO3 – V2O5 – Al2O3/Al and WO3 – V2O5 – TiO2/Ti, which are proposed as electrode materials for hydrogen evolution reactions. The study found that the dopant content, the metallic substrate characteristics, and surface morphology strongly influence the coatings’ functional properties. The Tafel coefficients a and b indicate a high level of electrocatalytic activity for the synthesized coatings, confirming their suitability as electrode materials for electrolytic hydrogen production. A comparison of photocatalytic activity in the methyl orange degradation reaction revealed higher activity of the aluminum-based coating than the titanium-based coating, highlighting the relevance of these materials for ecological technologies. The presence of nonstoichiometric oxides, compositional variability, morphological differences, and the developed surface area accounts for their exceptionally high electrocatalytic activity and, therefore, their strong potential for functional applications.
KW - composite coatings
KW - degradation
KW - electrocatalysis
KW - hydrogen evolution reaction
KW - metallic substrates
KW - photocatalysis
KW - plasma electrolytic oxidation
KW - vanadium and tungsten oxides
UR - https://www.scopus.com/pages/publications/105033707471
U2 - 10.26577/phst20251224
DO - 10.26577/phst20251224
M3 - 文章
AN - SCOPUS:105033707471
SN - 2409-6121
VL - 12
SP - 41
EP - 49
JO - Physical Sciences and Technology
JF - Physical Sciences and Technology
IS - 3-4
ER -