Hydrocarbon-Based Ionomer/PTFE-Reinforced Composite Membrane Through Multibar Coating Technique for Durable Fuel Cells

Sanghyeok Lee, Taejun Sul, Unsoo Kim, Sohee Kim, Ji Eon Chae, Junsoo Kim, Sang Moon Kim, Segeun Jang, Sanghyeok Lee
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Abstract

For cost reduction and environmental-friendly manufacturing, it is highly demanded to replace the current perfluorinated sulfonic acid-based membrane in polymer electrolyte membrane fuel cells (PEMFCs) with inexpensive and readily available hydrocarbon-based (HC) membranes. However, HC membranes suffer from profound dimensional changes caused by swelling and shrinking during operation, especially in automotive applications. These changes lead to severe mechanical degradation and shorten the service life of PEMFC. Herein, a multibar coating system is developed to manufacture HC/polytetrafluoroethylene (PTFE) composite membrane. This system facilitates capillary-rise infiltration with the aid of an optimal amount of residual alcohol solvent on the PTFE. To address compatibility issues between PTFE and HC-ionomer solutions, the effects of residual alcohol solvent on tuning the PTFE surface are investigated by controlling systemic parameters and performing diverse mechanical, optical, and electrochemical measurements. Based on its enhanced mechanical toughness (≈30.04%) and superior impregnation properties, the constructed HC/PTFE composite membrane exhibited more than seven-fold improvement in mechanical durability under repeated accelerated wet–dry conditions compared with an unsupported pristine HC membrane while also mitigating performance loss (≈5.84%).

Abstract Image

通过多棒涂层技术将碳氢化合物基离子聚合物/聚四氟乙烯增强复合膜用于耐用燃料电池
为了降低成本和实现环保生产,人们强烈要求在聚合物电解质膜燃料电池(PEMFCs)中用廉价易得的碳氢化合物(HC)膜取代目前的全氟磺酸基膜。然而,碳氢化合物膜在运行过程中,尤其是在汽车应用中,会因膨胀和收缩而产生严重的尺寸变化。这些变化会导致严重的机械退化,缩短 PEMFC 的使用寿命。在此,我们开发了一种多棒涂层系统,用于制造碳氢化合物/聚四氟乙烯(PTFE)复合膜。借助 PTFE 上的最佳残留酒精溶剂量,该系统可促进毛细管上升渗透。为了解决聚四氟乙烯与 HC 离子溶液之间的兼容性问题,我们通过控制系统参数和进行各种机械、光学和电化学测量,研究了残留酒精溶剂对聚四氟乙烯表面的调节作用。基于其增强的机械韧性(≈30.04%)和卓越的浸渍特性,与无支撑的原始碳氢化合物膜相比,所构建的碳氢化合物/聚四氟乙烯复合膜在反复加速干湿条件下的机械耐久性提高了七倍多,同时还减少了性能损失(≈5.84%)。
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