Effect of a Constant Magnetic Field on Electrodeposition of CoMo, CoRe, and CoMoRe Alloys from a Citrate Electrolyte
Yu. S. Yapontsevaa, V. N. Zaichenkoa, V. S. Kublanovskya, *, O. Yu. Gorobetsb,
Yu. M. Troshchenkovc, and O. A. Vyshnevskyid
a Vernadsky Institute of General and Inorganic Chemistry, National Academy of Sciences of Ukraine, Kyiv, 03142 Ukraine
b National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute," Kyiv, 03056 Ukraine
c Institute of Magnetism, National Academy of Sciences of Ukraine, Kyiv, 03142 Ukraine
d Semenenko Institute of Geochemistry, Mineralogy, and Ore Formation, National Academy of Sciences of Ukraine,
Kyiv, 03142 Ukraine
Correspondence to: *e-mail: kublan@ukr.net
Received 17 May, 2022
Abstract—Electrodeposition of CoMo and CoRe binary alloys and CoMoRe ternary alloys from a citrate electrolyte (pH 3.5) was studied depending on the presence of a magnetostatic field and the direction of the magnetic induction vector relative to the surface of the working electrode. It was shown that magnetoelectrolysis significantly increases the current efficiency of all investigated alloys, especially the CoMoRe ternary alloy. The forces acting in the liquid and on bubbles of hydrogen evolved during a reaction in a magnetostatic field were modeled. It was demonstrated that the generation of convective flows by magnetohydrodynamic effect is neither single, nor determining factor. In the case of intense gas evolution, the force balance varies depending on the size of the bubbles: the conduction force and the buoyancy force dominate for large bubbles (about 100 μm), whereas the magnetic gradient force is predominant for small bubbles (less than 1 μm).
Keywords: cobalt, molybdenum, rhenium, magnetic field, electrodeposition
DOI: 10.3103/S106837552304018X