Zhu Zidi, Jiang Yunan, Zhang Lijie, Han Hairui, Li Aijun, Xia Changrong
School of Material Science and Engineering, Shanghai University, Shanghai, China.
Department of Materials Science and Engineering, University of Science and Technology of China, Hefei, China.
Front Chem. 2024 Jul 19;12:1421125. doi: 10.3389/fchem.2024.1421125. eCollection 2024.
In the field of solid oxide cells (SOC), unveiling the electrochemical reaction and transfer mechanisms in mixed ionic and electronic conducting (MIEC) electrodes is of great importance. Due to the chemical capacitance effects of MIEC materials, SOC often shows large capacitance current during electrochemical tests, which might interfere with the polarization behaviors. This work presents a numerical multiphysical model based on the transport of oxygen species, which accurately and concisely replicates the current-voltage curves of a solid oxide electrolysis cell (SOEC) with MIEC electrodes under various scanning rates. The scanning IV and electrochemical impedance spectra measurement under different SOEC working conditions are combined to enable the separation of Faradic and charging currents. Thus, both the bulk diffusion and surface gaseous diffusion of the oxygen species are encompassed, which explains how the current being generated due to intertwined chemical capacitance effects and chemical reactions in the MIEC electrodes.
在固体氧化物电池(SOC)领域,揭示混合离子电子导体(MIEC)电极中的电化学反应和传输机制至关重要。由于MIEC材料的化学电容效应,SOC在电化学测试期间常常显示出较大的电容电流,这可能会干扰极化行为。这项工作提出了一个基于氧物种传输的数值多物理模型,该模型准确而简洁地复制了具有MIEC电极的固体氧化物电解池(SOEC)在各种扫描速率下的电流-电压曲线。结合不同SOEC工作条件下的扫描伏安曲线(IV)和电化学阻抗谱测量,实现了法拉第电流和充电电流的分离。因此,涵盖了氧物种的体扩散和表面气体扩散,这解释了MIEC电极中由于相互交织的化学电容效应和化学反应如何产生电流。