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Modeling impedance diagrams of active layers in gas diffusion electrodes: diffusion, ohmic drop effects and multistep reactions

机译:气体扩散电极中活性层的阻抗图建模:扩散,欧姆滴效应和多步反应

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摘要

The dc and ac responses of an active layer in a gas diffusion electrode (DEG) have been predicted from theory, considering both diffusion and ionic ohmic drop inside the active layer and a multistep mechanism. This complete approach required numerical resolution. One-step, two-step (Volmer-Heyrovsky) and three-step mechanisms have been investigated. numerical simulations from original models using dimensionless parameters lead to impedance diagrams involving a nearly perfect semicircle at low frequency and a 45° angle straight line at high frequency, so proving, respectively, the influence of mass and charge transport processes. Finally, a three-step oxygen reduction mechanism gives rise to theoretical impedance diagrams similar to the experimental ones.
机译:气体扩散电极(DEG)中的活性层的直流和交流响应已从理论上进行了预测,同时考虑了活性层内部的扩散和离子欧姆降以及多步机理。这种完整的方法需要数值分辨率。研究了单步,两步(Volmer-Heyrovsky)和三步机制。原始模型使用无量纲参数进行的数值模拟导致阻抗图涉及低频下的近乎完美的半圆和高频下的45°角直线,因此分别证明了质量和电荷传输过程的影响。最后,采用三步式氧气还原机制可得出与实验相似的理论阻抗图。

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