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Separators for alkaline water electrolysis prepared by plasma-initiated grafting of acrylic acid on microporous polypropylene membranes

机译:通过等离子体引发丙烯酸在微孔聚丙烯膜上的接枝反应制备的碱性水电解分离器

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Highly hydrophilic separators for alkaline water electrolysis were prepared by plasma initiated grafting of acrylic acid on porous polypropylene (PP) membranes. The membranes were activated in a low-pressure radio-frequency discharge in oxygen and subsequently graft polymerization of acrylic acid was performed in aqueous solution. The membranes were characterized by gravimetric grafting degree (GD), SEM, FTIR, critical wetting surface tension (CWST) test, mechanical strength, and electrolytic conductivity. Moreover, the membranes were applied as separators in alkaline electrolysis cell, and content of hydrogen in the produced oxygen was measured to determine membrane permeability to hydrogen dissolved in the electrolyte. It was observed that increasing GD improves performance of membranes as separators in alkaline electrolysis, although the particular effects on the electrolytic conductivity and hydrogen permeability strongly depend on structure the of initial PP substrate. Ageing test conducted in 30 wt% KOH at 60 degrees C revealed that although considerable degrafting took place at beginning of the test, the remaining polyacrylic acid provided highly hydrophilic character to membrane for 7000 h of the test. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:通过在多孔聚丙烯(PP)膜上进行等离子体引发的丙烯酸接枝反应,制备了用于碱性水电解的高度亲水性隔板。所述膜在氧气中的低压射频放电中活化,随后在水溶液中进行丙烯酸的接枝聚合。通过重量接枝度(GD),SEM,FTIR,临界润湿表面张力(CWST)测试,机械强度和电解电导率来表征膜。此外,将该膜用作碱性电解池中的隔膜,并测量所产生的氧中氢的含量,以确定膜对溶解在电解质中的氢的渗透性。观察到增加的GD改善了膜在碱性电解中作为隔膜的性能,尽管对电解质的电导率和氢渗透性的特殊影响很大程度上取决于初始PP基材的结构。在60摄氏度下于30 wt%KOH中进行的老化测试表明,尽管在测试开始时发生了相当多的接枝,但在7000 h的测试中,剩余的聚丙烯酸为膜提供了高度亲水性。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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