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采用双喷嘴喷涂工艺对质子交换膜燃料电池阴极催化剂进行逐层聚二甲基硅氧烷改性以提高耐久性

Layer-by-Layer Polydimethylsiloxane Modification Using a Two-Nozzle Spray Process for High Durability of the Cathode Catalyst in Proton-Exchange Membrane Fuel Cells.

作者信息

Yeon Je Hyeon, Jang Yeonghwan, Choi Mansoo, Jang Segeun

机构信息

Global Frontier Center for Multiscale Energy Systems, Seoul National University, Seoul 08826, Republic of Korea.

Department of Mechanical Engineering, Seoul National University, Seoul 08826, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2021 Dec 1;13(47):56014-56024. doi: 10.1021/acsami.1c12616. Epub 2021 Nov 16.

DOI:10.1021/acsami.1c12616
PMID:34783545
Abstract

The catalyst layer's high durability is essential in commercializing polymer electrolyte membrane fuel cells (PEMFCs), particularly for vehicle applications, because their frequent on/off operation can induce carbon corrosion, which affects surface properties and morphological characteristics of the carbon and results in aggregation and detachment of Pt nanoparticles on the carbon surface. Herein, to address the carbon corrosion problem while delivering a high-performance PEMFC, polydimethylsiloxane (PDMS) with high gas permeability, chemical stability, and hydrophobicity was employed to protect the catalyst layer from carbon corrosion and improve the mass transport. Because the catalyst slurry using alcohol-based solvents showed low compatibility with nonpolar solvents of the PDMS solution, a parallel two-nozzle system with separated solution reservoirs was developed by modifying a conventional three-dimensional printing machine. To determine the optimal PDMS amount in the cathode catalyst layer, PDMS solution concentration was varied by quantitatively controlling the PDMS amount coated on the electrode layer. Finally, the PEMFC with the PDMS-modified cathode of 0.1 mg cm loading showed enhanced durability due to increased electrochemical surface and maximum power density by 37.2 and 21.7%, respectively, after the accelerated stress test. Furthermore, an improvement in the initial performance from enhanced water management was observed compared to those of PEMFCs with a conventional electrode.

摘要

催化剂层的高耐久性对于聚合物电解质膜燃料电池(PEMFC)的商业化至关重要,特别是对于车辆应用而言,因为其频繁的开启/关闭操作会引发碳腐蚀,这会影响碳的表面性质和形态特征,并导致铂纳米颗粒在碳表面发生团聚和脱离。在此,为了解决碳腐蚀问题并同时提供高性能的PEMFC,采用了具有高气体渗透性、化学稳定性和疏水性的聚二甲基硅氧烷(PDMS)来保护催化剂层免受碳腐蚀并改善传质。由于使用醇基溶剂的催化剂浆料与PDMS溶液的非极性溶剂相容性较低,通过对传统三维打印机进行改造,开发了一种具有分离溶液储存器的平行双喷嘴系统。为了确定阴极催化剂层中PDMS的最佳用量,通过定量控制涂覆在电极层上的PDMS量来改变PDMS溶液浓度。最后,在加速应力测试后,负载为0.1 mg cm的PDMS改性阴极的PEMFC由于电化学表面积增加和最大功率密度分别提高了37.2%和21.7%,从而表现出增强的耐久性。此外,与具有传统电极的PEMFC相比,观察到由于水管理得到改善,初始性能有所提高。

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