首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Development of a high-performance anion exchange membrane using poly(isatin biphenylene) with flexible heterocyclic quaternary ammonium cations for alkaline fuel cells
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Development of a high-performance anion exchange membrane using poly(isatin biphenylene) with flexible heterocyclic quaternary ammonium cations for alkaline fuel cells

机译:使用聚(IsatiN联苯)的高性能阴离子交换膜与碱性燃料电池的柔性杂环季铵阳离子开发高性能阴离子交换膜

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A series of quaternary ammonium-tethered poly(isatin biphenylene)s (PIBs) were prepared devoid of alkaline labile aryl ether bonds via superacid-catalyzed polymerization and explored as highly alkaline stable backbones of anion exchange membranes (AEMs). The long flexible alkyl chains with pendent trimethylammonium (QA), 1-methylpyrrolidinium (Pyr), and 1-methylpiperidinium (Pip) were grafted to PIB backbones to construct AEMs endowed with high alkaline stability and OH- ion conductivity. Results show that the AEM tethered long alkyl side chain exhibits a distinct microphase-separated morphology. In particular, the presence of the long alkyl side chain pendant QA possesses the highest OH- ion conductivity of 93.88 mS cm(-1) at 80 degrees C among different AEMs, whereas the PIB tethered Pip shows the best alkaline stability and retains 71.7% of the original OH- ion conductivity after storage in 2.0 M aqueous NaOH at 80 degrees C for 1050 h. Besides, the oxidation stability of the as-prepared AEMs reaches 108 h, along with a weight decrease of 37.4% after immersion into 4 ppm Fenton's reagent at 80 degrees C. Furthermore, a platinum-catalyzed H-2-O-2 fuel cell using a QAPIB membrane shows a higher peak power density of 1.24 W cm(-2) than that using a PipPIB membrane (1.13 W cm(-2)). Therefore, the present study demonstrates that PIB-based AEMs exhibit good alkaline stability, oxidation durability, hydroxide ion conductivity and superior fuel cell performance. Thus, we emphasized this type of PIB-based AEM as a promising prospect in anion exchange membrane fuel cells.
机译:通过超酸催化的聚合制备一系列季铵氮含量的聚(Isatin联苯)(PIBs),其利用过度酸催化的聚合,并探索为阴离子交换膜(AEM)的高度碱性稳定骨架。将长柔性烷基链(QA),1-甲基吡咯烷(Pyr)和1-甲基哌啶(PIP)接枝到Pib骨架上,以构建赋予高碱性稳定性和OH离子传导性的AEM。结果表明,AEM系束性的长烷基侧链表现出不同的微相分离形态。特别地,在不同的AEM中,长烷基侧链侧链QA的存在具有93.88ms Cm(-1)的最高的OH-离子电导率93.88ms Cm(-1),而PIB系束性点显示出最佳的碱性稳定性并保持71.7%在80℃下储存在2.0m水溶液后的原始OH-离子电导率1050小时。此外,制备的AEMS的氧化稳定性达到108小时,在80℃下浸入4ppm FENTON试剂后,重量降低37.4%。此外,铂催化的H-2-O-2燃料电池使用QAPIB膜显示比使用pippib膜(1.13W cm(-2))的较高峰值功率密度为1.24W cm(-2)。因此,本研究表明,基于PIB的AEMS表现出良好的碱性稳定性,氧化耐久性,氢氧化物离子传导性和优异的燃料电池性能。因此,我们强调了这种基于PIB的PIB的AEM作为阴离子交换膜燃料电池的有希望的前景。

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