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Studies of new ionomers for polymer electrolyte membrane (PEM) fuel cells.

机译:用于聚合物电解质膜(PEM)燃料电池的新型离聚物的研究。

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摘要

At the center, both figuratively and literally, of a polymer electrolyte membrane (PEM) fuel cell lies the polymer membrane that separates the reaction gases and conducts protons from the anode to the cathode. The membrane is required to exhibit long-term stability, good mechanical properties, and high ionic conductivity. These properties are exhibited by Nafion, a commercially-produced perfluorosulfonic acid ionomer that is the current industry standard.; Novel ionomers that substitute the sulfonic acid functional group of Nafion with the bis[(perfluoroalkyl)sulfonyl]imide superacid functional group have been synthesized by DesMarteau and coworkers at Clemson University. This dissertation describes work aimed at characterizing sulfonyl imide ionomers through water absorption tests, ionic conductivity measurements, and single-cell tests.; The water absorption and ionic conductivity of the ionomers were found to be strongly dependent upon relative humidity of the environment and ionomer equivalent weight. Water absorption and ionic conductivity decreased with decreasing relative humidity, with the severity of the decrease being strongly dependent upon the ionomer's equivalent weight. Ionic conductivity was also found to be dependent on the chemical structure of the side chain and on the polymerization conditions.; Ionomers were incorporated into membrane electrode assemblies (MEAs) as membranes and also into electrode structures for single-cell tests. In general, MEAs fabricated using sulfonyl imide membranes performed as well as or only slightly worse than MEAs fabricated using Nafion membranes. Though slight improvements in performance were observed with the use of monoacid sulfonyl imide ionomers, these could usually be accounted for when the performance was corrected for differences in membrane thicknesses. Ionomer chemical structure was found to affect performance as monoacid sulfonyl imide ionomers exhibited better performance, particularly at higher current densities, than diacid ionomers.; The performance effects of operating PEM fuel cells with low relative humidity gas feed streams were investigated. Under low humidity, large fluctuations were observed in cell current and resistance coupled to a significant decrease in overall cell current. These effects were reversed when the gas feed streams were rehydrated. A cyclic flooding and dehydration of the anode electrode is proposed as a possible cause of the observed performance fluctuations and decreases.
机译:聚合物电解质膜(PEM)燃料电池在图形上和字面上都位于聚合物膜上,该聚合物膜分隔反应气体并将质子从阳极传导到阴极。要求该膜表现出长期稳定性,良好的机械性能和高离子电导率。这些性质由作为当前工业标准的商业生产的全氟磺酸离聚物Nafion展现出来。克莱姆森大学的DesMarteau及其同事合成了用双[(全氟烷基)磺酰基]亚胺超酸官能团取代Nafion磺酸官能团的新型离聚物。本文描述了旨在通过吸水率测试,离子电导率测量和单电池测试表征磺酰酰亚胺离聚物的工作。发现离聚物的吸水率和离子电导率在很大程度上取决于环境的相对湿度和离聚物当量。吸水率和离子电导率随相对湿度的降低而降低,降低的严重性很大程度上取决于离聚物的当量。还发现离子电导率取决于侧链的化学结构和聚合条件。离聚物被作为膜结合到膜电极组件(MEA)中,也被结合到用于单电池测试的电极结构中。通常,使用磺酰酰亚胺膜制造的MEA的性能与使用Nafion膜制造的MEA相同或仅稍差。尽管使用单酸磺酰酰亚胺离聚物可观察到性能略有改善,但当针对膜厚差异校正性能后,通常可以解释这些问题。由于单酸磺酰基酰亚胺离聚物表现出比二酸离聚物更好的性能,特别是在较高的电流密度下,发现离聚物的化学结构会影响性能。研究了在低相对湿度气体进料流下运行PEM燃料电池的性能影响。在低湿度下,观察到电池电流和电阻存在较大波动,从而导致总电池电流显着下降。当气体进料流再水化时,这些作用被逆转。提出阳极电极的周期性溢流和脱水是观察到的性能波动和降低的可能原因。

著录项

  • 作者

    Atkins, Jennie R.;

  • 作者单位

    Clemson University.;

  • 授予单位 Clemson University.;
  • 学科 Chemistry Analytical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 149 p.
  • 总页数 149
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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