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Optimal operating conditions evaluation of an anion-exchange-membrane electrolyzer based on FUMASEP? FAA3-50 membrane

机译:基于FUMASEP的阴离子交换膜电解槽最佳工况评价?FAA3-50膜

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摘要

? 2022 Hydrogen Energy Publications LLCHydrogen production via water electrolysis is considered the “greenest” way because it does not produce any direct carbon emissions when powered by renewable sources. Among the different technologies of electrolyzers, increasing interest is registered by that one based on anion-exchange membranes (AEMs). In this work, a FAA3-50 anion-exchange membrane (from FuMa-Tech) is used, after the KOH solution (1 M) exchange, as electrolyte/separator in an electrolysis cell of 5 cm2 geometrical area. Commercial IrO2 and 40 Pt/C catalysts are used at the anode and cathode, respectively, to evaluate the membrane under the most convenient conditions. The influence of cell temperature, membrane-electrode assembly (MEA) procedure (catalyst-coated membrane or catalyst coated electrode), and pure water or KOH solution on electrolyzer performance are analyzed. It appears that the catalyst-coated membrane approach, using the FAA3-50 membrane, allows higher temperature operation. However, diluted KOH solution is necessary to increase the membrane conductivity and the cell performance.
机译:?2022 Hydrogen Energy Publications LLC 通过水电解生产氢化被认为是“最环保”的方式,因为它在由可再生能源供电时不会产生任何直接碳排放。在电解槽的不同技术中,基于阴离子交换膜(AEM)的电解槽越来越受到关注。在这项工作中,在 KOH 溶液 (1 M) 交换后,使用 FAA3-50 阴离子交换膜(来自 FuMa-Tech)作为 5 cm2 几何面积电解槽中的电解质/隔膜。商业IrO2和40%Pt/C催化剂分别用于阳极和阴极,以在最方便的条件下评估膜。分析了电解槽温度、膜电极组装(MEA)工艺(催化剂包覆膜或催化剂包覆电极)以及纯水或KOH溶液对电解槽性能的影响。使用FAA3-50膜的催化剂涂层膜方法似乎允许更高的温度操作。然而,稀释的KOH溶液对于增加膜电导率和电池性能是必要的。

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