Effect of Solution Temperature on Electrodeposition Behavior of Zn-Ni Alloy from Alkaline Zincate Solution

IF 0.3 4区 材料科学 Q4 METALLURGY & METALLURGICAL ENGINEERING Tetsu To Hagane-journal of The Iron and Steel Institute of Japan Pub Date : 2022-07-15 DOI:10.2355/tetsutohagane.tetsu-2021-092
S. Bae, S. Oue, Yu-ki Taninouchi, I. Son, Hiroaki Nakano
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引用次数: 2

Abstract

Zn–Ni alloys were electrodeposited on a Cu electrode at 10–500 A·m −2 and 5 × 10 4 C·m −2 in an unagitated zincate solution at 293, 313, and 333 K. The effect of solution temperature on the electrodeposition behavior of Zn–Ni alloys from alkaline zincate solutions was investigated. The transition current density at which the deposition behavior shifted from a normal to an anomalous co-deposition was almost identical at 293 and 313 K but increased at 333 K, due to enhanced H 2 evolution and Ni deposition at 333 K. The current efficiency for alloy deposition increased with solution temperature in both the normal (10–50 A·m −2 ) and anomalous (500 A·m −2 ) co-deposition regions. In the normal co-deposition region, Ni deposition and H 2 evolution mainly occurred, and the current efficiency increased with solution temperature due to the stronger promotional effect of increase in solution temperature on Ni deposition. In the anomalous co-deposition region at 500 A·m −2 , Zn deposition and H 2 evolution mainly occurred, and Zn deposition appeared to proceed based on a mixed rate-determining process comprising the charge transfer and diffusion of Zn ions. The current efficiency increased with solution temperature due to the accel-eration of the Zn ions diffusion. The Ni content in the deposited films increased with the solution temperature at all the current densities, since Ni deposition was accelerated to a greater degree than Zn deposition by increasing the solution temperature in the region where the charge transfer process was rate-limiting. The γ -phase of the deposited films also increased with increasing solution temperature.
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溶液温度对碱性锌酸盐溶液中Zn-Ni合金电沉积行为的影响
在未搅拌的锌酸盐溶液中,在293、313和333 K下,在10 - 500 a·m−2和5 × 10 4 C·m−2的Cu电极上电沉积Zn-Ni合金。研究了溶液温度对碱性锌酸盐溶液中Zn-Ni合金电沉积行为的影响。在293 K和313 K时,使沉积行为从正常向异常共沉积转变的过渡电流密度几乎相同,但在333 K时,由于333 K下h2的演化和Ni的沉积增强,过渡电流密度增加。在正常共沉积区(10 ~ 50 A·m−2)和异常共沉积区(500 A·m−2),合金沉积的电流效率随溶液温度的升高而增加。在正常共沉积区,主要发生Ni沉积和h2演化,由于溶液温度的升高对Ni沉积的促进作用更强,电流效率随溶液温度的升高而增加。在500 A·m−2的异常共沉积区,主要发生Zn沉积和H 2的演化,Zn沉积是由Zn离子的电荷转移和扩散混合速率决定的过程。由于锌离子的扩散速度加快,电流效率随溶液温度的升高而增加。在所有电流密度下,沉积膜中的Ni含量都随着溶液温度的升高而增加,因为在电荷转移过程限速的区域,提高溶液温度,Ni的沉积速度比Zn的沉积速度更快。随着溶液温度的升高,沉积膜的γ相也增加。
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来源期刊
CiteScore
0.70
自引率
33.30%
发文量
74
审稿时长
6-12 weeks
期刊介绍: The journal ISIJ International first appeared in 1961 under the title Tetsu-to-Hagané Overseas. The title was changed in 1966 to Transactions of The Iron and Steel Institute of Japan and again in 1989 to the current ISIJ International. The journal provides an international medium for the publication of fundamental and technological aspects of the properties, structure, characterization and modeling, processing, fabrication, and environmental issues of iron and steel, along with related engineering materials. Classification I Fundamentals of High Temperature Processes II Ironmaking III Steelmaking IV Casting and Solidification V Instrumentation, Control, and System Engineering VI Chemical and Physical Analysis VII Forming Processing and Thermomechanical Treatment VIII Welding and Joining IX Surface Treatment and Corrosion X Transformations and Microstructures XI Mechanical Properties XII Physical Properties XIII New Materials and Processes XIV Social and Environmental Engineering.
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