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Microporous layers based on poly(vinylidene fluoride) and sulfonated poly(vinylidene fluoride)

机译:基于聚偏二氟乙烯和磺化聚偏二氟乙烯的微孔层

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In this study, electrically conductive microporous layers (MPLs) were prepared through the phase inversion technique by coagulation in a water bath of a mixture of either poly(vinylidene fluoride) or sulfonated poly(vinylidene fluoride) and graphite and carbon black as electrically-conductive fillers (ECFs). The novel gas diffusion layers (GDL) were obtained by casting the MPLs on a wet proof carbon cloth. Poly(vinylidene fluoride) (PVDF), due to its excellent chemical stability, thermal resistance and hydrophobic character was proposed in place of the more expensive and less processable PTFE. Moreover, sulfonated poly(vinylidene fluoride) (PVDFS, 1.9% sulfonation degree) it was investigated as binding agent in order to obtain MPLs with improved characteristics especially in view of the possibility of preparation of gas diffusion electrodes (GDEs) by the deposition of electro-active catalysts. MPLs morphology, water contact angle, electrical resistance, and through-plane air permeability were carefully examined. The PVDF and PVDFS MPLs were assembled with a catalysts coated Nafion membrane and the performance of the resulting membrane electrode assemblies were compared in a fuel cell fed with air and hydrogen. While electrical resistance of MPLs was slightly influenced by the different preparation conditions, the air permeability considerably increased by switching the solvent from N-methyl-2-pyrrolidone (NMP) to dimethyl sulfoxide (DMSO) and by increasing the air exposure time of the composite film after casting as confirmed by the morphological analysis through scanning electron microscopy. As an indication of the MPLs performance, at the operating current density of 0.60 A cm(-2), the single cell voltage of the proton exchange membrane fuel cell (PEMFC) was enhanced from about 0.43 to 0.5 V for PVDF based MPLs to about 0.60 V of PVDFS based MPL. The use of the phase inversion technique open several possibilities to tailor the MPL structure to specific fuel cell applications and moreover offers a more straightforward and scalable preparation method. Copyright (C) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:在这项研究中,通过在水浴中凝结聚偏二氟乙烯或磺化聚偏二氟乙烯与石墨和炭黑的混合物的水浴,通过相转化技术制备导电微孔层(MPL)填充物(ECF)。通过将MPL浇铸在防潮碳布上可获得新型气体扩散层(GDL)。聚偏二氟乙烯(PVDF)由于其优异的化学稳定性,耐热性和疏水性而被提出,以代替更昂贵和更难加工的PTFE。此外,研究了磺化聚偏二氟乙烯(PVDFS,磺化度为1.9%),以获得具有改进特性的MPL,特别是考虑到通过电沉积法制备气体扩散电极(GDE)的可能性。活性催化剂。仔细检查了MPL的形态,水接触角,电阻和贯穿平面的透气性。将PVDF和PVDFS MPL与涂有催化剂的Nafion膜组装在一起,并在加有空气和氢气的燃料电池中比较所得膜电极组件的性能。虽然MPL的电阻受到不同制备条件的轻微影响,但通过将溶剂从N-甲基-2-吡咯烷酮(NMP)切换为二甲亚砜(DMSO)并增加复合材料的空气暴露时间,透气度显着增加通过扫描电子显微镜的形态分析证实了流延后的薄膜。作为MPL性能的指标,在​​0.60 A cm(-2)的工作电流密度下,基于PVDF的MPL的质子交换膜燃料电池(PEMFC)的单电池电压从约0.43升至0.5V。 0.60 V的基于PVDFS的MPL。相变技术的使用为特定燃料电池应用量身定制MPL结构提供了多种可能性,而且还提供了一种更直接,可扩展的制备方法。 Hydrogen Energy Publications,LLC版权所有(C)2015。由Elsevier Ltd.出版。保留所有权利。

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