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一种合成高导电性阴离子交换膜的新方法。

A Novel Methodology to Synthesize Highly Conductive Anion Exchange Membranes.

作者信息

He Yubin, Pan Jiefeng, Wu Liang, Zhu Yuan, Ge Xiaolin, Ran Jin, Yang ZhengJin, Xu Tongwen

机构信息

CAS Key Laboratory of Soft Matter Chemistry, Collaborative Innovation Center of Chemistry for Energy Materials, School of Chemistry and Material Science, University of Science and Technology of China, Hefei 230026, P.R.

出版信息

Sci Rep. 2015 Aug 27;5:13417. doi: 10.1038/srep13417.

Abstract

Alkaline polyelectrolyte fuel cell now receives growing attention as a promising candidate to serve as the next generation energy-generating device by enabling the use of non-precious metal catalysts (silver, cobalt, nickel et al.). However, the development and application of alkaline polyelectrolyte fuel cell is still blocked by the poor hydroxide conductivity of anion exchange membranes. In order to solve this problem, we demonstrate a methodology for the preparation of highly OH(-) conductive anion exchange polyelectrolytes with good alkaline tolerance and excellent dimensional stability. Polymer backbones were grafted with flexible aliphatic chains containing two or three quaternized ammonium groups. The highly flexible and hydrophilic multi-functionalized side chains prefer to aggregate together to facilitate the formation of well-defined hydrophilic-hydrophobic microphase separation, which is crucial for the superior OH(-) conductivity of 69 mS/cm at room temperature. Besides, the as-prepared AEMs also exhibit excellent alkaline tolerance as well as improved dimensional stability due to their carefully designed polymer architecture, which provide new directions to pursue high performance AEMs and are promising to serve as a candidate for fuel cell technology.

摘要

碱性聚电解质燃料电池作为下一代能源生成装置的一个有前途的候选者,目前正受到越来越多的关注,因为它能够使用非贵金属催化剂(银、钴、镍等)。然而,阴离子交换膜的氢氧化物传导性差仍然阻碍着碱性聚电解质燃料电池的发展和应用。为了解决这个问题,我们展示了一种制备具有良好耐碱性和出色尺寸稳定性的高OH(-)传导性阴离子交换聚电解质的方法。聚合物主链接枝了含有两个或三个季铵化铵基团的柔性脂肪族链。高度柔性和亲水的多功能侧链倾向于聚集在一起,以促进形成明确的亲水-疏水微相分离,这对于室温下69 mS/cm的优异OH(-)传导性至关重要。此外,由于其精心设计的聚合物结构,所制备的阴离子交换膜还表现出优异的耐碱性以及改善的尺寸稳定性,这为追求高性能阴离子交换膜提供了新方向,并有望成为燃料电池技术的候选者。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/91f2/4550832/7d5d6b9e32d1/srep13417-f1.jpg

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