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Improvement of water management in polymer electrolyte membrane fuel cell thanks to cathode cracks

机译:阴极裂纹改善了聚合物电解质膜燃料电池的水管理

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The role of cathodic structure on water management was investigated for planar micro-air-breathing polymer electrolyte membrane fuel cells (PEMFCs). The electrical results demonstrate the possibility to decrease, with the same structure, both cell drying and cell flooding according to the environmental and operation conditions. Thanks to a simultaneous study of internal resistance and scanning electronic microscope (SEM) images, we demonstrate the advantageous influence of the presence of crack in cathodic catalytic layer on water management. On the one hand, the gold layer used as cathodic current collector is in contact with the electrolyte in the cracked zones which allows water maintenance within the electrolyte. It allows to decrease the cell drying and thus strongly increase the electrical performances. For cells operated in a 10% relative humidity atmosphere at 30℃ and at a potential of 0.5 V, the current density increases from 28 mA cm~(-2) to 188 mA cm~(-2) (+570%) for the cell with a cathodic cracked network. On the other hand, the reduction in oxygen barrier diffusion due to the cathodic cracks allows to improve oxygen diffusion. In flooding state, the current densities were higher for a cell with a cracked network. For cells operating in a 70% relative humidity atmosphere at 30 ℃ and at a potential of 0.2 V, a current density increase from 394 mA cm~(-2) to 456 mA cm~(-2) (16%) was noted for the cell with a cathodic cracked network. Microscopic observations allowed us to visualize water droplets growth mechanism in cathodic cracks. It was observed that the water comes out of the crack sides and partially saturates the cracks before emerging on cathodic collector. These results demonstrate that cathode structuration is a key parameter that plays a major role in the water management of PEMFCs.
机译:研究了平面结构微呼吸聚合物电解质膜燃料电池(PEMFC)阴极结构在水管理中的作用。电学结果表明,根据环境和操作条件,具有相同结构的细胞干燥和细胞浸入都有可能降低。由于同时研究了内部电阻和扫描电子显微镜(SEM)图像,我们证明了阴极催化层中裂纹的存在对水管理的有利影响。一方面,用作阴极集电器的金层在破裂区域中与电解质接触,这允许在电解质内维持水。它可以减少电池干燥,从而大大提高电性能。对于在30℃,相对湿度为10%,电压为0.5 V的电池工作的电池,电流密度从28 mA cm〜(-2)增加到188 mA cm〜(-2)(+ 570%)。带有阴极破裂网络的电池。另一方面,由于阴极裂纹引起的氧阻挡层扩散的减少允许改善氧扩散。在淹没状态下,网络破裂的电池的电流密度更高。对于在70℃,相对湿度为70%,电压为0.2 V的电池工作,电流密度从394 mA cm〜(-2)增加到456 mA cm〜(-2)(16%)。具有阴极破裂网络的单元。微观观察使我们能够看到阴极裂纹中水滴的生长机理。观察到,水从裂缝的侧面流出,并在出现在阴极集电器上之前使裂缝部分饱和。这些结果表明,阴极结构是一个关键参数,在PEMFC的水管理中起着重要作用。

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