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An Investigation into Polybenzimidazoles as Anion Exchange Membranes

机译:聚苯并咪唑类阴离子交换膜的研究

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摘要

A study was done into three sets of polybenzimidazoles (PBIs). The first set is a quaternized PBI known as poly(1,3-dimethyl benzimidazolium) (P(DMBI)) that was shown to have anion exchange properties. The second set is a novel quarternized PBI that had additional methylation on the phenyl ring known as mesitylene-poly(1,3-dimethyl benzimidazolium) (Mes-P(DMBI)) which also had anion exchange properties. The last set is a series of blend membranes of PBI and Mes-P(DMBI)-OH-, which showed that it was possible to synthesize a stable, hydroxide-conducting polymer. The P(DMBI) membranes were synthesized with various counter-anions (I-, Cl-, Br-, NO3-, HCO3- and OH-) and they were mostly found to have low water uptake at high ion exchange capacities (IECs) and good conductivity values. They were also found to be thermally stable up to approximately 150°C. The hydroxide membrane was unstable due to membrane degradation, which provided the impetus to synthesize the second and third sets of PBIs mentioned above. Mes-P(DMBI) is a novel polymer that was synthesized in order to attempt to create a stable hydroxide-conducting polymer. It was also synthesized with various counter-anions (I-, Cl-, Br-, OH-), and they were found to have much higher water uptake than their P(DMBI) counterparts. The hydroxide membrane was stable, but water-soluble, rendering it unusable as anion exchange membranes (AEMs). The stability of the aforementioned Mes-P(DMBI)-OH- prompted the synthesis of a series of blend membranes of PBI and Mes-P(DMBI)-OH- with different IECs. This utilized the cross-linking and mechanical stability properties of PBI, combined with the hydroxide-conducting property of Mes-P(DMBI)-OH- to make a stable, hydroxide-conducting membrane. The blend membranes were found to conduct hydroxide and to be stable in concentrated (2 M) KOH(aq) at 60°C over the period of a week, showing great promise for use in AEM fuel cells.
机译:对三套聚苯并咪唑(PBI)进行了研究。第一组是称为聚(1,3-二甲基苯并咪唑鎓)(P(DMBI))的季铵化PBI,它具有阴离子交换性能。第二组是新颖的季铵化PBI,其在苯环上具有额外的甲基化,称为均三甲苯-聚(1,3-二甲基苯并咪唑鎓)(Mes-P(DMBI)),它也具有阴离子交换特性。最后一组是PBI和Mes-P(DMBI)-OH-的一系列共混膜,表明可以合成稳定的,可传导氢氧化物的聚合物。 P(DMBI)膜是用各种抗衡阴离子(I-,Cl-,Br-,NO3-,HCO3-和OH-)合成的,大多数情况下发现它们在高离子交换容量(IEC)下具有低吸水率以及良好的电导率值还发现它们在约150°C的温度下具有热稳定性。由于膜降解,氢氧化物膜不稳定,这为合成上述第二和第三组PBI提供了动力。 Mes-P(DMBI)是一种新型聚合物,旨在尝试创建稳定的传导氢氧化物的聚合物而合成。它也与各种抗衡阴离子(I-,Cl-,Br-,OH-)合成,并且发现它们的吸水率比P(DMBI)高。氢氧化物膜是稳定的,但可溶于水,使其无法用作阴离子交换膜(AEM)。前述Mes-P(DMBI)-OH-的稳定性促使具有不同IEC的PBI和Mes-P(DMBI)-OH-的一系列共混膜的合成。它利用了PBI的交联和机械稳定性能,并结合了Mes-P(DMBI)-OH-的氢氧化物传导性,从而制成了稳定的氢氧化物传导膜。发现共混膜可传导氢氧化物,并在60°C的浓(2 M)KOH(aq)环境中一周内稳定,这显示了在AEM燃料电池中使用的广阔前景。

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    Soo Kristen Jean Wing Yen;

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