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用于阴离子交换膜的聚(乙烯哌啶鎓)

Poly(Ethylene Piperidinium)s for Anion Exchange Membranes.

作者信息

Chen Huanhuan, Bang Ki-Taek, Tian Ye, Hu Chuan, Tao Ran, Yuan Yufei, Wang Rui, Shin Dong-Myeong, Shao Minhua, Lee Young Moo, Kim Yoonseob

机构信息

Department of Chemical and Biological Engineering, The Hong Kong, University of Science and Technology Clear Water Bay, Kowloon, Hong Kong SAR, China.

Department of Energy Engineering, College of Engineering, Hanyang University, Seoul, 04763, Republic of Korea.

出版信息

Angew Chem Int Ed Engl. 2023 Sep 18;62(38):e202307690. doi: 10.1002/anie.202307690. Epub 2023 Aug 9.

Abstract

The lack of anion exchange membranes (AEMs) that possess both high hydroxide conductivity and stable mechanical and chemical properties poses a major challenge to the development of high-performance fuel cells. Improving one side of the balance between conductivity and stability usually means sacrificing the other. Herein, we used facile, high-yield chemical reactions to design and synthesize a piperidinium polymer with a polyethylene backbone for AEM fuel cell applications. To improve the performance, we introduced ionic crosslinking into high-cationic-ratio AEMs to suppress high water uptake and swelling while further improving the hydroxide conductivity. Remarkably, PEP80-20PS achieved a hydroxide conductivity of 354.3 mS cm at 80 °C while remaining mechanically stable. Compared with the base polymer PEP80, the water uptake of PEP80-20PS decreased by 69 % from 813 % to 350 %, and the swelling decreased substantially by 85 % from 350.0 % to 50.2 % at 80 °C. PEP80-20PS also showed excellent alkaline stability, 84.7 % remained after 35 days of treatment with an aqueous KOH solution. The chemical design in this study represents a significant advancement toward the development of simultaneously highly stable and conductive AEMs for fuel cell applications.

摘要

缺乏兼具高氢氧根离子传导率以及稳定的机械和化学性能的阴离子交换膜(AEMs),是高性能燃料电池发展面临的一项重大挑战。改善传导率与稳定性之间平衡的一方面,通常意味着牺牲另一方面。在此,我们利用简便、高产率的化学反应,设计并合成了一种具有聚乙烯主链的哌啶鎓聚合物,用于AEM燃料电池应用。为提高性能,我们将离子交联引入到高阳离子比例的AEMs中,以抑制高吸水率和溶胀,同时进一步提高氢氧根离子传导率。值得注意的是,PEP80 - 20PS在80°C时实现了354.3 mS cm的氢氧根离子传导率,同时保持机械稳定性。与基础聚合物PEP80相比,PEP80 - 20PS的吸水率在80°C时从813%降至350%,降低了69%,溶胀从350.0%大幅降至50.2%,降低了85%。PEP80 - 20PS还表现出优异的碱性稳定性,在用KOH水溶液处理35天后仍保留84.7%。本研究中的化学设计代表了在开发用于燃料电池应用的同时具有高稳定性和传导性的AEMs方面的重大进展。

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