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The dynamic-state effects of sodium ion contamination on the solid polymer electrolyte water electrolysis

机译:钠离子污染对固体聚合物电解质水电解的动态影响

摘要

Na+ is a likely intrinsic impurity in water and is a potential cation impurity in the solid polymer electrolyte water electrolysis. In this paper, the dynamic-state effect of low concentration of Na+ is studied by adding Na+ into the deionized water fed in the SPE water electrolyser. The dynamic variation of cell voltage results show that the cell performance degraded more severely in the presence of Na+ impurity by anode poisoning than by cathode poisoning. The severity and poisoning rate of the cell depend on the Na+ concentration, water flow rate and cell temperature. However, the current density does not impact the extent of the cell voltage increase. In the meantime, an external reference electrode is used to measure the anode and cathode potentials. The performance degradation is mainly ascribed to the increase in cathode overpotential by anode poisoning. EIS measurements show that the performance difference primarily comes from the kinetics loss rather than the ohmic loss. The decrease of available protons in the three phase boundaries may lead to the increase in charge transfer resistance. The electron probe microanalysis tests show that Na+ remains in CCM even recovered with deionized water, which results in only partially recovered cell performance. (C) 2013 Elsevier B.V. All rights reserved.
机译:Na +是水中可能的固有杂质,并且是固体聚合物电解质水电解中的潜在阳离子杂质。本文通过向SPE电解槽中加入的去离子水中添加Na +来研究低浓度Na +的动态状态效应。电池电压结果的动态变化表明,在存在Na +杂质的情况下,阳极中毒会比阴极中毒严重降低电池性能。细胞的严重程度和中毒率取决于Na +浓度,水流速和细胞温度。但是,电流密度不会影响电池电压升高的程度。同时,外部参考电极用于测量阳极和阴极电势。性能下降主要归因于阳极中毒导致阴极超电势的增加。 EIS测量表明,性能差异主要来自动力学损耗,而不是欧姆损耗。三相边界中可用质子的减少可能导致电荷转移电阻的增加。电子探针微分析测试表明,即使用去离子水回收,Na +仍保留在CCM中,这仅会部分恢复电池性能。 (C)2013 Elsevier B.V.保留所有权利。

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