Electrochemical Synthesis of Ni/TiO2 Composite Coatings from Deep Eutectic Solvent and Electrocatalytic Characteristics of Deposits

IF 1.1 Q4 ELECTROCHEMISTRY Surface Engineering and Applied Electrochemistry Pub Date : 2022-10-27 DOI:10.3103/S106837552205009X
V. S. Protsenko, T. E. Butyrina, D. A. Bogdanov, S. A. Korniy, F. I. Danilov
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引用次数: 3

Abstract

Kinetics of electrodeposition of composite Ni/TiO2 coatings was studied using the electrolyte based on a deep eutectic solvent (DES) containing choline chloride, ethylene glycol, water additive, and nickel chloride. Degussa P 25 nanopowder was used as a dispersed phase in the electrolyte (1–10 g/dm3). The developed electrolyte allows depositing composite coatings with the content of titanium dioxide reaching ~10 wt %. The electrolytic deposition of the composite was shown to obey Guglielmi’s kinetic model. The main parameters of codeposition of TiO2 particles into a nickel matrix were determined in the framework of this kinetic model. The codeposition of titanium dioxide was found to inhibit the reaction of the nickel ions' discharge. Electrocatalytic properties of the prepared composite Ni/TiO2 coatings were evaluated with respect to the hydrogen evolution reaction in an aqueous alkaline solution. A noticeable improvement in the electrocatalytic activity was observed when titanium dioxide particles were introduced into an electrodeposited nickel matrix.

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深层共晶溶剂电化学合成Ni/TiO2复合镀层及其电催化性能
采用含有氯化胆碱、乙二醇、水添加剂和氯化镍的深共晶溶剂(DES)作为电解液,研究了Ni/TiO2复合镀层的电沉积动力学。采用德固赛p25纳米粉体作为分散相(1-10 g/dm3)。所开发的电解质可以沉积二氧化钛含量达到~10 wt %的复合涂层。复合材料的电解沉积符合古列尔米动力学模型。在此动力学模型的框架下,确定了TiO2颗粒在镍基体上共沉积的主要参数。二氧化钛的共沉积抑制了镍离子的放电反应。对制备的Ni/TiO2复合涂层在碱性水溶液中的析氢反应进行了电催化性能评价。当将二氧化钛颗粒引入电沉积镍基体时,电催化活性得到了显著改善。
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来源期刊
Surface Engineering and Applied Electrochemistry
Surface Engineering and Applied Electrochemistry Engineering-Industrial and Manufacturing Engineering
CiteScore
1.70
自引率
22.20%
发文量
54
审稿时长
6 months
期刊介绍: Surface Engineering and Applied Electrochemistry is a journal that publishes original and review articles on theory and applications of electroerosion and electrochemical methods for the treatment of materials; physical and chemical methods for the preparation of macro-, micro-, and nanomaterials and their properties; electrical processes in engineering, chemistry, and methods for the processing of biological products and food; and application electromagnetic fields in biological systems.
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