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Physical modeling of the electrochemical impedance spectra for the O 2 reduction reaction in HTPEM fuel cells’ cathodic electrochemical interface

机译:O 2 在HTPEM燃料电池阴极电化学界面中的降低反应的电化学阻抗谱的物理建模

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摘要

In this study we propose a microkinetic transition state pathway for the oxygen reduction reaction, (ORR), for the high temperature polymer electrolyte (HTPEM) fuel cell cathodic electrode, focusing on the importance of the cathodic impedance spectrum features, in the kinetic low current density, (lcd), regime of operation when ORR activation power losses are dominant. The ORR impedance spectrum involves a linear high frequency part feature and two arcs depending on the double layer capacitance, (Cdl), value. The high frequency linear part of the spectrum stems from the finite ionic, (H+), resistance in the catalyst layer. Our simulations revealed two arcs: all charge transfer reaction steps appear under the same high frequency arc directly related to theCdlof the electrochemical interface, (EI), while the low frequency, (LF), arc originates from the relaxation of the adsorbed surface reaction intermediates on the catalyst surface, which is caused by the depletion ofOHadon the surface. The kinetic model provides two Tafel slopes in the low and high current density (hcd) regime equal to 60 (mV/dec) and 180 (mV/dec) respectively.
机译:在该研究中,我们提出了一种用于氧还原反应(ORR)的微酮过渡状态途径,用于高温聚合物电解质(HTPEM)燃料电池阴极电极,重点是阴极阻抗谱特征的重要性,在动力学低电流中密度,(液晶显示),操作时的操作制度是orr激活功率损失的主导。 ORR阻抗谱涉及线性高频部件特征和两个弧,这取决于双层电容(CDL),值。光谱的高频线性部分源于有限的离子,(H +),催化剂层中的电阻。我们的模拟显示了两个弧:所有电荷转移反应步骤在与电化学界面直接相关的相同高频弧下出现,(EI),弧源自吸附表面反应中间体的弛豫在催化剂表面上,这是由表面耗尽引起的。动力学模型分别提供等于60(MV / DEC)和180(MV / DEC)的低电流密度(HCD)制度的两个TAFEL斜率。

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