用计时电流法研究双层电容的非均相动力学与延迟的相似性

Yuanyuan Liu, K. Aoki, Jingyuan Chen
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引用次数: 1

摘要

使用Cottrell方程计算的二茂铁衍生物通过电位阶氧化的计时安培曲线显示,铂丝电极上的扩散控制电流较小。这种较低的偏差不能通过Butler-Volmer非均相动力学来解释,而是归因于与氧化还原反应相关的负电容电流。完全氧化电位的偏差对应于电极表面的非零浓度,这是不能用能斯特方程预测的。这个方程表示的是电极表面的电位和活性之间的关系,而不是浓度。扩散方程决定了电流和表面浓度之间的关系,而不是活性。由于偶极-偶极相互作用在电极上形成的结构可能产生负电容或非零浓度,这类似于双层电容的产生,包括频率色散。根据这一概念,我们推导出降低扩散控制电流和随时间变化的表面浓度的表达式。负电容电流表现出t−0.9的时间依赖性,这与双层电容电流的衰减相似。表面浓度随t - 0.4衰减。
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Similarity of Heterogeneous Kinetics to Delay of Double-Layer Capacitance Using Chronoamperometry
Chronoamperometric curves for the oxidation of a ferrocenyl derivative via a potential step, calculated using the Cottrell equation, showed less diffusion-controlled currents on a platinum wire electrode. This lower deviation cannot be explained via Butler–Volmer heterogeneous kinetics, but was ascribed to the negatively capacitive current associated with a redox reaction. The deviation in fully oxidized electrical potential corresponds to the non-zero concentration at the electrode surface, which cannot be predicted using the Nernst equation. This equation expresses the relationship between the electrical potential and activity at the electrode surface rather than the concentration. The diffusion equation determines the relationship between the current and surface concentration rather than activity. Negative capacitance or a non-zero concentration may arise from structure formation on the electrode owing to dipole–dipole interactions, which are similar to the generation of double-layer capacitance, including frequency dispersion. Following this concept, we derive expressions for a lowered diffusion-controlled current and time-dependent surface concentration. The negatively capacitive current shows the time dependence of t−0.9, which is similar to the decay of double-layer capacitive currents. The surface concentration decays with t−0.4-dependence.
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