Development and characterization of Zn–Ni, Zn–Co and Zn–Ni–Co coatings
Acidic sulphate baths having ZnSO4 7H2O, NiSO4 7H2O, CoSO4 7H2O and sulphamic acid
(SA) were optimized for the deposition of smooth Zn–Ni, Zn–Co and Zn–Ni–Co coatings on
mild steel substrate. Bath compositions and deposition conditions were optimized by Hull
cell method for maximum efficiency against depositions in corrosion. Faradic efficacy
exceeded 90% as the current density increased; increased wt-% of nobler metal content (Ni
and Co) in the deposit. Potentiodynamic polarization and electrochemical impedance …
(SA) were optimized for the deposition of smooth Zn–Ni, Zn–Co and Zn–Ni–Co coatings on
mild steel substrate. Bath compositions and deposition conditions were optimized by Hull
cell method for maximum efficiency against depositions in corrosion. Faradic efficacy
exceeded 90% as the current density increased; increased wt-% of nobler metal content (Ni
and Co) in the deposit. Potentiodynamic polarization and electrochemical impedance …
Acidic sulphate baths having ZnSO4 7H2O, NiSO4 7H2O, CoSO4 7H2O and sulphamic acid (SA) were optimized for the deposition of smooth Zn–Ni, Zn–Co and Zn–Ni–Co coatings on mild steel substrate. Bath compositions and deposition conditions were optimized by Hull cell method for maximum efficiency against depositions in corrosion. Faradic efficacy exceeded 90% as the current density increased; increased wt-% of nobler metal content (Ni and Co) in the deposit. Potentiodynamic polarization and electrochemical impedance spectroscopy indicates that the Zn–Ni–Co coating; corrosion resistance was 28 times higher than the Zn–Ni and 21 times higher than the Zn–Co coating. The good corrosion resistance of the Zn–Ni–Co coating was ascribed to its phase structure and the surface morphology. New cheap sulphate baths have been suggested for bright and uniform coating of Zn–Ni, Zn–Co and Zn–Ni–Co and result have been discussed.
Sage Journals
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