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Electrochemistry of Fe3+/2+ at highly oriented pyrolytic graphite (HOPG) electrodes : kinetics, identification of major electroactive sites and time effects on the response

机译:Fe3 + / 2 +在高取向热解石墨(HOPG)电极上的电化学:动力学,主要电活性位的识别以及时间对响应的影响

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摘要

The electrochemistry of the Fe3+/2+ redox couple has been studied on highly oriented pyrolytic graphite (HOPG) samples that differ in step edge density by 2 orders of magnitude to elucidate the effect of surface structure on the electron transfer (ET) kinetics. Macroscopic cyclic voltammetry measurements in a droplet-cell arrangement, highlight that the Fe3+/2+ process is characterised by slow ET kinetics on HOPG and that step edge coverage has little effect on the electrochemistry of Fe3+/2+. A standard heterogeneous ET rate constant of ~5 × 10-5 cm s-1 for freshly cleaved HOPG was derived from simulation of the experimental results, which fell into the range of the values reported for metal eletrodes, e.g. platinum and gold, despite the remarkable difference in density of electronic states (DOS) between HOPG and metal electrodes. This provides further evidence that outer-sphere redox processes on metal and sp2 carbon electrodes appear to be adiabatic. Complementary surface electroactivity mapping of HOPG, using scanning electrochemical cell microscopy, reveal the basal plane to be the predominant site for the Fe3+/2+ redox process. It is found that time after cleavage of the HOPG surface has an impact on the surface wettability (and surface contamination), as determined by contact angle measurements, and that this leads to a slow deterioration of the kinetics. These studies further confirm the importance of understanding and evaluating surface structure and history effects in HOPG electrochemistry, and how high resolution measurements, coupled with macroscopic studies provide a holistic view of electrochemical processes.
机译:已在高度取向的热解石墨(HOPG)样品上研究了Fe3 + / 2 +氧化还原对的电化学,该样品的台阶边缘密度相差2个数量级,以阐明表面结构对电子转移(ET)动力学的影响。液滴池布置中的宏观循环伏安法测量强调,Fe3 + / 2 +过程的特征是HOPG上的ET动力学较慢,并且台阶边缘覆盖对Fe3 + / 2 +的电化学影响很小。根据实验结果的模拟得出新鲜裂解的HOPG的〜5×10-5 cm s -1的标准异质ET速率常数,该值落入了报道的金属电极值范围内。尽管HOPG和金属电极之间的电子态(DOS)密度存在显着差异,但铂和金却是如此。这提供了进一步的证据,表明金属和sp2碳电极上的外层氧化还原过程似乎是绝热的。 HOPG的互补表面电活性图谱,使用扫描电化学电池显微镜观察,揭示了基底平面是Fe3 + / 2 +氧化还原过程的主要位置。发现通过接触角测量确定,HOPG表面裂解后的时间对表面润湿性(和表面污染)有影响,并且这导致动力学的缓慢恶化。这些研究进一步证实了了解和评估HOPG电化学中的表面结构和历史效应的重要性,以及高分辨率测量与宏观研究相结合如何提供电化学过程的整体视图。

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