利用多模板在非离子聚合物膜中定制多孔结构,用于低成本铁铅单流电池

Jiaxuan Zhang, Amaia Lejarazu-Larrañaga, Fan Yang, Weilong Jiang, Mingruo Hu, Sheng Sui, Haolong Li, Fengjing Jiang
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引用次数: 0

摘要

多孔离子选择膜是氧化还原液流电池中昂贵的全氟磺酸膜的有望替代品。在这项研究中,我们设计了用于铁铅单流电池的新型非离子多孔聚偏氟乙烯-六氟丙烯膜。该膜采用多模板方法制备,包括同时使用聚乙二醇和邻苯二甲酸二丁酯(DBP)作为孔形成模板。通过调整两种模板的比例,可对其多孔结构进行微调。因此,获得了同时具有大孔和微孔的双孔膜。具有改良多孔结构的 H3520 膜可获得 43.5 mS-cm-1 的高质子传导率和相对较低的铁离子扩散常数(8.61 × 10-8 cm2-min-1),并在这些决定性能的参数之间实现了最佳平衡(选择性为 5.04 × 105 S-min-cm-3,高于 N115 膜)。此外,配备双孔膜的铁铅单流单体电池的性能测试表明,在额定电流密度下能量效率高达 87.2%,并且在 200 次充放电循环中具有出色的循环稳定性。总之,混合模板法为制备用于氧化还原液流电池的高性能、低成本非离子膜提供了一种前景广阔的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tailoring porous structure in non-ionic polymer membranes using multiple templates for low-cost iron-lead single-flow batteries
Porous ion-selective membranes are promising alternatives for the expensive perfluorosulfonic acid membranes in redox flow batteries. In this work, novel non-ionic porous polyvinylidene fluoride-hexafluoro propylene membranes are designed for iron-lead single-flow batteries. The membranes are prepared using a multiple template approach, involving simultaneously using polyethylene glycol and dibutyl phthalate (DBP) as pore-forming templates. Their porous structure is finely tuned by adjusting the ratio of the two templates. As a result, dual-porous membranes bearing both macro and micropores are obtained. The H3520 membrane with modified porous structure attains a high proton conductivity of 43.5 mS·cm-1 and a relatively low ferric ion diffusion constant (8.61 × 10-8 cm2·min-1) and demonstrates the best balance between these performance-determining parameters (selectivity 5.04 × 105 S·min·cm-3, higher than that of the N115 membrane). Besides, performance tests of the iron-lead single-flow single cells equipped with the dual-porous membranes show a high energy efficiency, exceeding 87.2% at its rated current density, and outstanding cycling stability over 200 charge-discharge cycles. Altogether, the mixed template method presents a promising strategy to prepare high-performance and low-cost non-ionic membranes for redox flow batteries.
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