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High Temperature Alkaline Electrolysis Cells with Metal Foam Based Gas Diffusion Electrodes

机译:基于金属泡沫的气体扩散电极的高温碱性电解槽

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摘要

Alkaline electrolysis cells operating at 250°C and 40 bar are able to convert electrical energy into hydrogen at very high efficiencies and power densities. In the present work we demonstrate the application of a PTFE hydrophobic network and Ag nanowires as oxygen evolution electrocatalyst in the metal foam based gas diffusion electrodes. A novel cell production method, based on tape casting and hot pressing, was developed which allows to increase the cell size from lab scale (1 cm2) to areas of 25 cm2 or larger. The thickness of the electrolyte matrix could be adjusted to only 200 μm, achieving a serial resistance and total area specific resistance of only 60 mΩ cm2 and 150 mΩ cm2, respectively, at 200°C and 20 bar, yielding a record high current density of 3.75 A cm-2 at a cell voltage of 1.75 V. Encouraging long-term stability was obtained over 400 h of continuous electrolysis. This novel cell concept promises more than a 10-fold improvement in power density, compared to conventional alkaline electrolysis cells, and thereby equivalent reduction in stack size and cost.
机译:在250°C和40 bar的温度下运行的碱性电解池能够以非常高的效率和功率密度将电能转化为氢气。在当前的工作中,我们证明了PTFE疏水网络和Ag纳米线在基于金属泡沫的气体扩散电极中作为析氧电催化剂的应用。开发了一种基于带式浇铸和热压的新型电池生产方法,该方法可以将电池尺寸从实验室规模(1 cm2)增加到25 cm2或更大。电解质基体的厚度可以调整为仅200μm,在200°C和20 bar下的串联电阻和总面积比电阻分别仅为60mΩcm2和150mΩcm2,产生了创纪录的高电流密度电池电压为1.75 V时为3.75 A cm-2。在400个小时的连续电解过程中,获得了长期稳定性的鼓励。与传统的碱性电解池相比,这种新颖的电解池概念有望使功率密度提高10倍以上,从而使堆叠尺寸和成本相应降低。

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