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离聚物粘合剂与催化剂之间的相互作用调控:用于阴离子交换膜燃料电池的活性三相边界与高性能催化剂层

Interaction Regulation Between Ionomer Binder and Catalyst: Active Triple-Phase Boundary and High Performance Catalyst Layer for Anion Exchange Membrane Fuel Cells.

作者信息

Cao Huixing, Pan Ji, Zhu Hairong, Sun Zhe, Wang Bowen, Zhao Junliang, Yan Feng

机构信息

College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou, 215123, China.

出版信息

Adv Sci (Weinh). 2021 Oct;8(19):e2101744. doi: 10.1002/advs.202101744. Epub 2021 Aug 2.

Abstract

As one of the most crucial components, the catalyst layer (CL) plays a critical role in the performance of anion exchange membrane fuel cells (AEMFCs). However, the effect of the structural evolution of ionomer binder on the micromorphology and catalytic activity of CL is yet to be clarified. In this study, pyrrolidinum and quaternary ammonium cations are attached to the polyphenylene oxide (PPO) backbone through flexible spacer units (five, seven, or nine carbon atoms) with different terminal alkyl groups. The Van der Waals force and electrostatic repulsion between the ionomer binder and catalyst are regulated through the flexible spacer units and terminal alkyl groups to alleviate the agglomeration of catalyst particles and acquire a high catalytic activity. To evaluate the electrochemical stability of the cationic groups, the alkaline stability of the ionomer binder is tested under a constant voltage to simulate the true operational environment of the fuel cells. The results reveal that the degradation of the cation groups of ionomer binder is accelerated under a constant voltage condition. This phenomenon in neglect earlier, may serve as a useful reference for the synthesis and performance enhancement of ionomer binders.

摘要

作为最关键的组件之一,催化剂层(CL)在阴离子交换膜燃料电池(AEMFC)的性能中起着至关重要的作用。然而,离聚物粘合剂的结构演变对CL的微观形态和催化活性的影响尚未阐明。在本研究中,吡咯烷鎓和季铵阳离子通过具有不同末端烷基的柔性间隔单元(五个、七个或九个碳原子)连接到聚亚苯基氧化物(PPO)主链上。通过柔性间隔单元和末端烷基调节离聚物粘合剂与催化剂之间的范德华力和静电排斥力,以减轻催化剂颗粒的团聚并获得高催化活性。为了评估阳离子基团的电化学稳定性,在恒定电压下测试离聚物粘合剂的碱性稳定性,以模拟燃料电池的真实运行环境。结果表明,在恒定电压条件下,离聚物粘合剂阳离子基团的降解加速。这种先前被忽视的现象可能为离聚物粘合剂的合成和性能增强提供有用的参考。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae0a/8498875/3a048f91c3a5/ADVS-8-2101744-g005.jpg

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