论文标题

氧还原反应反应催化剂降解的整体多尺度成像在操作燃料电池中降解

Holistic Multi-scale Imaging of Oxygen Reduction Reaction Catalyst Degradation in Operational Fuel Cells

论文作者

Martens, Isaac, Vamvakeros, Antonis, Martinez, Nicolas, Chattot, Raphaël, Pusa, Janne, Blanco, Maria Valeria, Fisher, Elizabeth A., Asset, Tristan, Escribano, Sylvie, Micoud, Fabrice, Starr, Tim, Coelho, Alan, Honkimäki, Veijo, Bizzotto, Dan, Wilkinson, David P., Jacques, Simon D. M., Maillard, Frédéric, Dubau, Laetitia, Lyonnard, Sandrine, Morin, Arnaud, Drnec, Jakub

论文摘要

低温氢燃料电池系统的广泛扩散是氢经济的关键部分,受到铂阴极催化剂的降解的阻碍。在这里,我们使用用于设备尺度成像的高级操作X射线散射断层扫描,对分子尺度催化剂降解现象进行了设备水平评估。每个细胞成分,包括催化剂,碳载体,聚合物电解质和液态水,都可以同时映射,从而可以进行深度相关分析。在操作燃料电池内形成的化学和热梯度会产生催化剂纳米结构的高度异质降解,这可以与流场的宏观设计和细胞材料中的水分布相关。在操作燃料电池设备和常规用于催化剂稳定性研究的液体细胞之间观察到催化剂降解的差异,突出了复杂工作环境对催化剂降解现象的研究很少研究但至关重要的影响。这种退化知识差距强调了在评估电催化剂的性能和耐用性时,真实设备的原位表征的必要性。

Wide proliferation of low temperature hydrogen fuel cell systems, a key part of the hydrogen economy, is hindered by degradation of the platinum cathode catalyst. Here, we provide a device level assessment of the molecular scale catalyst degradation phenomena, using advanced operando X-ray scattering tomography tailored for device-scale imaging. Each cell component, including the catalyst, carbon support, polymer electrolyte, and liquid water can be simultaneously mapped, allowing for deep correlative analysis. Chemical and thermal gradients formed inside the operating fuel cell produce highly heterogeneous degradation of the catalyst nanostructure, which can be linked to the macroscale design of the flow field and water distribution in the cell materials. Striking differences in catalyst degradation are observed between operating fuel cell devices and the liquid cell routinely used for catalyst stability studies, highlighting the rarely studied but crucial impact of the complex operating environment on the catalyst degradation phenomena. This degradation knowledge gap highlights the necessity of multimodal in situ characterization of real devices when assessing the performance and durability of electrocatalysts.

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