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首页> 外文期刊>Electrochimica Acta >On the effect of temperature and surface oxidation on the kinetics of hydrogen electrode reactions on nickel in alkaline media
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On the effect of temperature and surface oxidation on the kinetics of hydrogen electrode reactions on nickel in alkaline media

机译:关于温度和表面氧化对碱性介质镍氢电极反应动力学的影响

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The influence of the temperature on the kinetics of the hydrogen oxidation (HOR) and evolution reactions (HER) on Ni electrodes has been explored in the range from 298 to 338 K. By combining an expexrimental cyclic voltammetry study and microkinetic modeling, the rate constants and the activation energies of the individual Volmer-Tafel-Heyrovsky steps have been extracted for two surface states of Ni electrode, namely metallic Ni and partially oxidized one. The kinetic model suggests that the HOR/HER on metallic Ni follows the Heyrovsky-Volmer mechanism characterized by strong adsorption of the hydrogen intermediate and low reaction rate. Partial coverage of the electrode surface with Ni oxide species results in a decrease of the strength of adsorption of hydrogen atoms and an increase of the rate of the Volmer step thus leading to a significant enhancement of the HOR/HER kinetics. Furthermore, the kinetic model provides evidence for a contribution of the Tafel step in the reaction mechanism for a partially oxidized electrode. The apparent activation energy is shown to be slightly dependent on the surface state, decreasing from 30 +/- 1 for metallic to 26 +/- 1 kJ mol(-1) for partially oxidized Ni. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在Ni电极上的氢氧化(hor)和演化反应(她)对Ni电极的影响的影响已经在298至338k的范围内。通过组合扩张循环伏安法研究和速率常数并且已经提取了单独的Volmer-Tafel-Heyrovsky步骤的激活能量,用于两种表面状态的Ni电极,即金属Ni和部分氧化1。动力学模型表明,HAR /她在金属NI上遵循HEYROVSKY-Volmer机制,其特征在于强烈吸附氢中间体和低反应速率。用Ni氧化物物质的电极表面的部分覆盖导致氢原子吸附强度的降低,从而导致Hor /她的动力学的显着增强的Volmer步骤的速度增加。此外,动力学模型提供了用于部分氧化电极的反应机理中Tafel步骤的贡献的证据。表观活化能量显示出略微依赖于表面状态,从30 +/- 1降低金属至26 +/- 1kJ摩尔(-1)的部分氧化Ni。 (c)2018年elestvier有限公司保留所有权利。

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