Investigating the effect of solvent composition on ink structure and crack formation in polymer electrolyte membrane fuel cell catalyst layers

IF 3.2 4区 工程技术 Q2 CHEMISTRY, MULTIDISCIPLINARY Korean Journal of Chemical Engineering Pub Date : 2023-06-03 DOI:10.1007/s11814-023-1474-3
Seong Hyeon Woo, Sungmin Kim, Seunghee Woo, Seok-Hee Park, Yun Sik Kang, Namgee Jung, Sung-Dae Yim
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引用次数: 2

Abstract

To improve the performance of polymer electrolyte membrane fuel cells (PEMFCs), controlling the microstructure of the membrane electrode assembly (MEA) catalyst layer is crucial. Ink design, which includes a catalyst, an ionomer, and a solvent, serves as the starting point for controlling the microstructure of the catalyst layer. However, there is a significant lack of understanding of the ink structure required for this purpose. In this study, we investigated the effect of the solvent, a key component that determines the ink structure. The ink comprises 20 wt% Pt/C, short-side-chain (SSC) Aquivion ionomer, and a solvent mixture of 1-propanol (NPA) and water. Three types of inks with different compositions of NPA and water are manufactured, and their stability and rheological properties were measured to infer and compare the ink structures. Furthermore, the crack characteristics of the catalyst layer were compared by directly coating the ink onto the electrolyte membrane using the doctor-blade method. In the ink with a high water content, we observed a gel-like elastic behavior dominated by network structures formed by ionomers adsorbed between catalyst particles. In contrast, the ink with a high NPA content exhibited a liquid-like viscous behavior dominated by well-dispersed catalyst particles and ionomers. These properties of the inks directly influence the crack formation characteristics after coating. Specifically, the strong liquid properties of the NPA-rich ink were found to suppress crack formation in the catalyst layer. These findings provide important insights into how the solvent composition affects ink structure and how it, in turn, influences crack formation in the catalyst layer, which can help optimize the ink design to improve the performance of PEMFCs.

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溶剂组成对聚合物电解质膜燃料电池催化剂层油墨结构和裂纹形成的影响
为了提高聚合物电解质膜燃料电池(PEMFC)的性能,控制膜电极组件(MEA)催化剂层的微观结构至关重要。油墨设计包括催化剂、离聚物和溶剂,是控制催化剂层微观结构的起点。然而,对用于此目的所需的油墨结构的理解严重不足。在这项研究中,我们研究了溶剂的影响,溶剂是决定墨水结构的关键成分。该油墨包含20wt%的Pt/C、短侧链(SSC)Aquivion离聚物和1-丙醇(NPA)与水的溶剂混合物。制备了三种不同组成的NPA和水的油墨,并测量了它们的稳定性和流变性能,以推断和比较油墨的结构。此外,通过使用刮刀法将油墨直接涂覆在电解质膜上,比较了催化剂层的裂纹特性。在高含水量的油墨中,我们观察到由吸附在催化剂颗粒之间的离聚物形成的网络结构主导的凝胶状弹性行为。相反,具有高NPA含量的油墨表现出由良好分散的催化剂颗粒和离聚物主导的液体状粘性行为。油墨的这些特性直接影响涂布后的裂纹形成特性。具体地,发现富含NPA的油墨的强液体性质抑制了催化剂层中的裂纹形成。这些发现为溶剂成分如何影响油墨结构以及溶剂成分如何反过来影响催化剂层中的裂纹形成提供了重要的见解,这有助于优化油墨设计以提高PEMFC的性能。
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来源期刊
Korean Journal of Chemical Engineering
Korean Journal of Chemical Engineering 工程技术-工程:化工
CiteScore
4.60
自引率
11.10%
发文量
310
审稿时长
4.7 months
期刊介绍: The Korean Journal of Chemical Engineering provides a global forum for the dissemination of research in chemical engineering. The Journal publishes significant research results obtained in the Asia-Pacific region, and simultaneously introduces recent technical progress made in other areas of the world to this region. Submitted research papers must be of potential industrial significance and specifically concerned with chemical engineering. The editors will give preference to papers having a clearly stated practical scope and applicability in the areas of chemical engineering, and to those where new theoretical concepts are supported by new experimental details. The Journal also regularly publishes featured reviews on emerging and industrially important subjects of chemical engineering as well as selected papers presented at international conferences on the subjects.
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