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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >A Compariison of Simulated and Experimental Voltammograms Obtained for the [Fe(CN)_6]~(3-/4-) Couple in the Absence of Added Supporting Electrolyte at a Rotatig Disk Electrode
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A Compariison of Simulated and Experimental Voltammograms Obtained for the [Fe(CN)_6]~(3-/4-) Couple in the Absence of Added Supporting Electrolyte at a Rotatig Disk Electrode

机译:[Fe(CN)_6]〜(3- / 4-)对在缺少旋转盘电极上添加支持电解质的情况下获得的模拟和实验伏安图的比较

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摘要

The voltammetric behavior of the [Fe(CN)_6]~(3-/4-) couple at a glassy carbon rotating macrodisk electrode without added supporting electrolyte is shown to be in close to ideal agreement with the theory presented over a wide range of electrode rotation and scan rates when the concentration of electroactive species used is 50 mM. The influences of migration, uncompensated resistance heterogeneous charge-transfer kinetics, and inhomogeneous diffusion are shown to be well modeled by a finite difference simulation scheme that affords excellent agreement between experiment and theory. The use of the rotating disk electrode, even when only moderate rotation rates are employed, is shown to eliminate the problem with natural convection that exists when using stationary electrodes (macro- or microdisk) and that is enhanced in the absence of added supporting electrolyte. Consequently, it has been concluded that the rotating disk electrode method represents an almost ideal technique for conducting studies without added supporting electrolyte.
机译:结果表明,在不添加支持电解质的情况下,[Fe(CN)_6]〜(3- / 4-)对在玻璃碳旋转大盘电极上的伏安行为与理论相近。当使用的电活性物质浓度为50 mM时,电极旋转和扫描速率。通过有限差分模拟方案可以很好地模拟迁移,未补偿电阻的异质电荷转移动力学和不均匀扩散的影响,该方案在实验和理论之间取得了很好的一致性。即使仅采用适度的旋转速度,旋转盘电极的使用也显示出消除了自然对流的问题,该问题在使用固定电极(宏盘或微型盘)时存在,并且在不添加辅助电解质的情况下得到增强。因此,可以得出结论,转盘电极法是进行研究而无需添加支持电解质的几乎理想的技术。

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