静态多晶金电极在 H2SO4 溶液中发生氢气进化反应的机理分析

Zahed Ghelichkhah, Digby D. Macdonald, Gregory S. Ferguson
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摘要

建立了一个基于 Volmer-Heyrovsky-Tafel 机理的阻抗模型,用于研究多晶金电极在中等过电位的 H2SO4(0.5 和 1.0 M)水溶液中发生氢演化反应的动力学。根据电位极化和电化学阻抗谱数据对模型进行了优化,并提取了模型参数。与预期一致,阻抗数据的大小表明在较低的 pH 值下氢演化的速率较高。此外,吸附氢的部分表面覆盖率(θHads)随着过电势的增加而增加,但θHads 值较小,表明金对氢的吸附很弱。据估计,在 H2SO4(0.5 和 1.0 M)中,塔菲尔斜率和交换电流密度的范围分别为 81-124 mV/dec、10-6 和 10-5 A/cm2。结果表明,该模型很好地解释了稳态电流密度等实验数据。灵敏度分析表明,与氢进化反应动力学相关的电化学参数(α1、α2、k10、k-10 和 k20)对计算阻抗的影响很大,但氢氧化反应的标准速率常数(k-20)对计算阻抗的影响不大。
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Mechanistic Analysis of Hydrogen Evolution Reaction on Stationary Polycrystalline Gold Electrodes in H2SO4 Solutions
An impedance model based on the Volmer–Heyrovsky–Tafel mechanism was developed to study the kinetics of the hydrogen evolution reaction on polycrystalline gold electrodes at moderate overpotentials in aqueous H2SO4 (0.5 and 1.0 M) solutions. The model was optimized on data from potentiodynamic polarization and electrochemical impedance spectroscopy, and model parameters were extracted. Consistent with expectations, the magnitude of the impedance data indicated a higher rate of hydrogen evolution at lower pH. Also, the fractional surface coverage of adsorbed hydrogen (θHads) increases with increasing overpotential but the small value of θHads indicates only weak adsorption of H on gold. Tafel slopes and exchange current densities were estimated to be in the range of 81–124 mV/dec, and 10−6 and 10−5 A/cm2 in H2SO4 (0.5 and 1.0 M), respectively. The results show that the model accounts well for the experimental data, such as the steady-state current density. Sensitivity analysis reveals that the electrochemical parameters (α1, α2, k10, k−10, and k20) associated with the kinetics of the hydrogen evolution reaction have a major impact on the calculated impedance but the standard rate constant for hydrogen oxidation reaction (k−20) does not strongly affect the calculated impedance.
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