柠檬酸盐-氨电解质中锡锌合金的电化学沉积

Svitlana Hermanivna Deribo, S. Leshchenko, Valrii Pavlovych Gomozov, Yuliia Ivanivna Kovalenko
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摘要

研究了锡锌合金在柠檬酸盐-氨电解质中电化学沉积的阴极过程。电解液主要成分含量(g/dm3): SnCl2·2H2O - 44、ZnO - 4、NH4Cl - 100、Na3C6H5O7 - 100。电解液中加入木胶(1.5 g/dm3)和新醇(4 ml/dm3)作为表面活性剂。研究发现,只有在pH值为6,0 ~ 7,0的范围内,才能在不加热和搅拌的情况下沉积高质量的涂层。在电解液中加入这些物质预计会抑制金属的还原,改善镀层的晶体结构,但会降低阴极电流效率。赫尔电池研究表明,与其他溶液相比,含有新醇作为表面活性剂的电解质具有更好的投掷力。合金的电流效率与阴极电流密度的关系表明,在0.5 A/dm2到4 A/dm2的电流密度范围内,电流效率在82%到52%之间呈非线性下降。实验得到的合金锌含量与阴极电流密度的关系表明,可以得到锌含量为8% ~ 33%的合金。研究结果表明,为使镀层具有最佳的防腐性能,锌含量为20 ~ 25%的合金的沉积需要在阴极电流密度为1,5 ~ 2,0 a /dm2的条件下进行,而电流效率约为70%,沉积速率为0,44 ~ 0,54 μm/min。收到的涂层具有半光亮的外观,细颗粒结构,浅灰色,它们与基材有很强的附着力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ELECTROCHEMICAL DEPOSITION OF TIN–ZINC ALLOY FROM CITRATE–AMMONIA ELECTROLYTE
The cathodic processes of electrochemical deposition of a tin–zinc alloy in citrate–ammonia electrolytes have been investigated. The content of the main components of the investigated electrolyte (g/dm3): SnCl2·2H2O – 44, ZnO – 4, NH4Cl – 100, Na3C6H5O7 – 100. Wood glue (1.5 g/dm3) and neonol (4 ml/dm3) were added to the electrolyte as surfactants. It was found that high–quality coatings are deposited without heating and stirring only in the pH range from 6,0 to 7,0. The addition of these substances to the electrolyte is predicted to lead to inhibition of the reduction of metals, an improvement in the crystal structure of the deposit, but decreases the cathodic current efficiency. Hull cell studies showed that an electrolyte containing neonol as a surfactant showed better throwing power compared to other solutions. The dependence of the current efficiency of the alloy on the cathode current density showed that in the range of current densities from 0.5 A/dm2 to 4 A/dm2, the current efficiency decreases nonlinearly from 82 % to 52 %. The experimentally obtained dependence of the zinc content in the alloy on the cathodic current density showed the possibility of obtaining alloys with a zinc content of 8 % to 33 %. The obtained results allowed us to determine that for the deposition of an alloy with a zinc content of 20–25 %, which provides the best anti–corrosion properties of the coating, it is necessary to carry out the process at a cathodic current density of 1,5–2,0 A/dm2, while the current efficiency is about 70 %, and the deposition rate alloy is 0,44–0,54 μm/min. The received coatings have a semi–bright appearance, a fine–grained structure, light gray color, they are strongly adhered to the substrate.
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