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Elucidating Structure-Property Relationships in Highly Permeable Perfluorinated Sulfonic Acid Ionomers

机译:在高渗透性全氟化磺酸离聚物中阐明结构性质关系

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Commercially available perfluorinated sulfonic acid ionomers (PFSAs), utilized as polymer electrolytes in membrane electrode assemblies (MEAs), have driven rapid improvements in fuel cell performance. These materials have a polytetrafluoroethylene (PTFE) backbone and semicrystalline matrix which imparts mechanical integrity and low gas permeability, making them attractive membrane materials. However, their low gas permeability introduces significant mass-transport limitations in catalyst layers, especially severe in oxygen reduction at the cathode. In this study, we present the synthesis of an amorphous PFSA incorporating perfluoro(2-methylene 4-methyl-1,3-dioxolane) (PFMMD) in the backbone. This impacted the material nanostructure at multiple length scales, simultaneously increasing gas permeability (>3x oxygen permeability of Nafion) via reduced crystallinity and increased fractional free volume while reducing proton conductivity via changes in matrix mechanical properties which inhibited phase separation of ionomer domains. When integrated in a fuel cell MEA, this trade-off yielded significant improvements; specifically, current density per cm~2 platinum increased up to 22% upon substituting the PFMMD based ionomer for Nafion in the cathode binder. In this presentation, I will discuss the facile synthesis of PFMMD based ionomers with tunable PFSA content. Furthermore, I will discuss structure-property relationships resolved from transport measurements and morphological characterization. Finally, I will discuss the implementation of these materials in fuel cells and the potential for meaningful performance improvements. These results demonstrate the value of rational ionomer design toward better performing electrochemical devices.
机译:可商购的全氟磺酸离聚物(PFSA)用作膜电极组件(MEAS)中的聚合物电解质(MEAS),在燃料电池性能方面具有快速改善。这些材料具有聚四氟乙烯(PTFE)骨架和半结晶基质,其赋予机械完整性和低气体渗透性,使其具有吸引力的膜材料。然而,它们的低气体渗透性引入了催化剂层中的显着质量传输限制,特别是阴极在阴极上的氧还原中的严重。在该研究中,我们介绍了在骨架中掺入全氟(2-亚甲基4-甲基-1,3-二氧戊烷)(PFMMD)的无定形PFSA的合成。这在多个长度尺度下产生了物质纳米结构,同时通过降低的结晶度和增加的分数的分数增加,同时增加透气性(Nafion的氧气渗透率),同时通过基质机械性能的变化降低质子电导率,这抑制离子域分离的相分离。当集成在燃料电池MEA中时,这种权衡产生了显着的改进;具体地,当在阴极粘合剂中取代基于PFMMD的离聚物时,每CM〜2铂的电流密度高达22%。在本介绍中,我将通过可调谐PFSA含量讨论基于PFMMD的离聚物的容易合成。此外,我将讨论从运输测量和形态表征解决的结构性质关系。最后,我将讨论这些材料在燃料电池中的实施以及有意义的性能改进的可能性。这些结果证明了Rational离聚物设计对更好的电化学装置的价值。

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