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Solid polymer electrolyte water electrolysis systems for hydrogen production based on our newly developed membranes, Part I: Analysis of voltage-current characteristics

机译:基于我们新开发的膜的用于制氢的固体聚合物电解质水电解系统,第I部分:电压-电流特性分析

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A new solid polymer electrolyte water electrolysis system was constructed using an original proton exchange membrane (PEM). The highly proton-conductive PEM was prepared by the γ-ray-induced post-grafting of styrene into a crosslinked-polytetrafiuoroethylene (PTFE) film and subsequent sulfonation. The water vapor to be electrolyzed was controlled at a constant relative humidity and introduced into the cell at different temperatures up to 80℃. As the cell voltage was increased, the current became higher; the maximum current was 50 mA/cm~2 at 2.5 V at a temperature of 80℃, corresponding to a hydrogen production rate of 0.38 mL/min cm~2 in the normal state (25℃, 1 atm). The voltage-current characteristics were analyzed with a theoretical model based on Butler-Volmer kinetics for electrodes and transport resistance through the PEM. This analysis revealed that the anode exchange current density and interfacial resistance determined the electrolysis performance.
机译:使用原始的质子交换膜(PEM)构建了新的固体聚合物电解质水电解系统。通过γ射线诱导的苯乙烯后接枝到交联的聚四氟乙烯(PTFE)膜中,然后进行磺化,制备高质子传导性PEM。将要电解的水蒸气控制在恒定的相对湿度下,并在高达80℃的不同温度下引入电池。随着电池电压的增加,电流变得更高;在80℃,温度为2.5 V时,最大电流为50 mA / cm〜2,对应于正常状态(25℃,1 atm)下的氢气产生速率为0.38 mL / min cm〜2。使用基于Butler-Volmer电极动力学和通过PEM的传输电阻的理论模型对电压-电流特性进行了分析。该分析表明,阳极交换电流密度和界面电阻决定了电解性能。

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