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Effect of Membrane Properties on the Carbonation of Anion Exchange Membrane Fuel Cells

机译:膜特性对阴离子交换膜燃料电池碳酸化的影响

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摘要

Anion exchange membrane fuel cells (AEMFC) are potentially very low-cost replacements for proton exchange membrane fuel cells. However, AEMFCs suffer from one very serious drawback: significant performance loss when CO2 is present in the reacting oxidant gas (e.g., air) due to carbonation. Although the chemical mechanisms for how carbonation leads to voltage loss in operating AEMFCs are known, the way those mechanisms are affected by the properties of the anion exchange membrane (AEM) has not been elucidated. Therefore, this work studies AEMFC carbonation using numerous high-functioning AEMs from the literature and it was found that the ionic conductivity of the AEM plays the most critical role in the CO2-related voltage loss from carbonation, with the degree of AEM crystallinity playing a minor role. In short, higher conductivity—resulting either from a reduction in the membrane thickness or a change in the polymer chemistry—results in faster CO2 migration and emission from the anode side. Although this does lead to a lower overall degree of carbonation in the polymer, it also increases CO2-related voltage loss. Additionally, an operando neutron imaging cell is used to show that as AEMFCs become increasingly carbonated their water content is reduced, which further drives down cell performance.
机译:阴离子交换膜燃料电池(AEMFC)可能是质子交换膜燃料电池的潜在非常低成本的替代品。然而,AEMFCs遭受一个非常严重的缺点:当CO 2存在于导致的氧化剂气体(例如,空气)中存在显着性能损失。虽然碳酸化如何导致操作AEMFCS的电压损失的化学机制是已知的,但是这些机制受阴离子交换膜(AEM)的性质影响的方式尚未得到阐明。因此,这项工作研究AEMFC碳酸化使用来自文献的许多高功能性AEM,并且发现AEM的离子电导率在碳酸化的CO2相关电压损失中发挥着最关键的作用,具有AEM结晶度扮演A的程度轻微的作用。简而言之,从膜厚度的降低或聚合物化学的变化导致更高的导电性 - 导致阳极侧的速度较快的CO 2迁移和发射。虽然这确实导致聚合物中的碳酸化较低,但也增加了CO 2相关的电压损失。另外,使用OFMANDO中子成像电池表明,随着AEMFC越来越碳化,它们的含水量降低,这进一步推动了细胞性能。

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