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Elaboration of nanostructured and highly proton conductive membranes for PEMFC by ion track grafting technique

机译:离子轨道移植技术用离子轨道覆盖技术制备PEMFC的纳米结构和高质量导电膜

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In order to develop a novel proton conductive membrane for proton exchange membrane fuel cell (PEMFC), a poly(vinyl di-fluoride) (PVDF) matrix was irradiated with swift heavy ions (SHI) to obtain radically active cylindrical latent tracks in the polymer film. Styrene was then radiografted and further sulfonated into these irradiated cylindrical regions, leading to sulfonated polystyrene (PVDF-g-PSSA) domains within PVDF. The role of the grafting degree and fluence of irradiation of the PVDF matrix on PVDF-g-PSSA membranes properties (chemical composition, ion exchange capacity) was investigated. Then, a membrane-electrode assembly (MEA) was prepared and fuel cell tests have been performed. Our results clearly show that PVDF-g-PSSA membranes with a grafting degree of about 140%, obtained after irradiation at a fluence of 10~(10) ions/cm~2, exhibit good conductivity values but their durability is limited to about 70 h. Decreasing the fluence leads to membranes with lower grafting yield but with fuel cell performances closer to those of 140% grafted PVDF-g-PSSA membrane and improved mechanical properties. Then, ion track grafting technique is a promising technique to obtain PEM with a good trade-off between proton conductivity and mechanical properties.
机译:为了开发用于质子交换膜燃料电池(PEMFC)的新型质子导电膜,用SWIFT重离子(SHI)照射聚(乙烯基二氟化物)(PVDF)基质,以在聚合物中获得完全活性的圆柱形潜在轨道电影。然后将苯乙烯进一步熔化到这些照射的圆柱区域中,导致PVDF内的磺化聚苯乙烯(PVDF-G-PSSA)结构域。研究了PVDF-G-PSSA膜性质(化学成分,离子交换容量)对PVDF基质的接枝程度和PVDF基质照射的流量的作用。然后,制备膜 - 电极组件(MEA)并进行燃料电池测试。我们的结果清楚地表明,在10〜(10)离子/ cm〜2的流量下照射后,PVDF-G-PSSA膜的接枝率为约140%,表现出良好的电导率,但它们的耐久性限制为约70 H。降低流量导致具有较低接枝产率的膜,但燃料电池性能更接近140%接枝的PVDF-G-PSSA膜和改善的机械性能。然后,离子轨道移植技术是一种有希望的技术,以获得质子电导率和机械性能之间的良好折衷的PEM。

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