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Modeling the Dynamic Effects of Catalyst Poisoning and Mixed Potential Formation in a DMFC

机译:模拟DMFC催化剂中毒和混合潜力形成的动态效应

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The present model is developed to investigate the coupled reaction mechanisms in a DMFC and therein associated voltage losses in the catalyst layers. The model accounts for the crossover of both, methanol from anode to cathode and oxygen from cathode to anode. The reactant crossover results in parasitic internal currents that are finally responsible for high overpotentials in both electrodes, so-called mixed potentials. They are most evident at no-load condition in the open circuit voltage. A simplified and general reaction mechanism for the methanol oxidation reaction (MOR) was selected, that accounts for the coverage of active sites by intermediate species occurring during the MOR. The model describes a complete five-layer membrane electrode assembly (MEA), with gas diffusion layers, catalyst layers and membrane. The analysis of the performance losses by means of this model are mainly focused on the electrochemical processes. Therefore, the gas diffusion electrode is modeled as a simplified homogeneous active layer. The simulation of the anode potential relaxation after current interruption shows an undershoot behavior like it was measured in the experiment [1]. The model gives an explanation of this phenomenon by the transients of reactant crossover in combination with the change of CO and OH coverages on Pt and Ru, respectively.
机译:开发了本模型以研究DMFC中的耦合反应机制及其在催化剂层中的相关电压损失。该模型对阳极与阴极与阴极到阳极的阴极和氧气的交叉。反应物交叉导致寄生内部电流最终负责两个电极中的高过电位,所谓的混合电位。它们在开路电压中的无负载条件下最明显。选择了用于甲醇氧化反应(MOR)的简化和一般的反应机制,其通过在MOR期间通过中间物种占据活性位点的覆盖。该模型描述了一种完整的五层膜电极组件(MEA),气体扩散层,催化剂层和膜。通过该模型分析性能损失主要集中在电化学过程中。因此,气体扩散电极被建模为简化的均匀有源层。电流中断后阳极电位弛豫的模拟显示了像实验中测量的下冲行为[1]。该模型分别通过反应物交叉的瞬态结合CO和OH覆盖的变化分别给出了这种现象的解释。

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